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This work developed during the first funding period of the subproject B05 in the framework of the interdisciplinary research consortium TRR 225 ‘From the Fundamentals of Biofabrication toward functional Tissue Models’ and was part of a cooperation between the Orthopedic Department represented by Prof. Dr. Regina Ebert and the Institute of Organic Chemistry represented by Prof. Dr. Jürgen Seibel.
This project dealed with cellular behavior during the bioprinting process and how to influence it by modifying the cell glycocalyx with functional target molecules. The focus was on the impact of potential shear stress, that cells experience when they get processed in thermoresponsive bioinks, and a way to increase the cell stiffness via metabolic glycoengineering to attenuate shear forces. For the characterization of the metabolic glycoengineering, four different peracetylated and four non-acetylated modified monosaccharides (two mannose and two sialic acid sugars) were tested in primary human mesenchymal stromal cells (hMSC) and telomerase-immortalized hMSC (hMSC-TERT). Viability results demonstrated a dose-dependent correlation for all sugars, at which hMSC-TERT seemed to be more susceptible leading to lower viability rates. The assessment of the incorporation efficiencies was performed by click chemistry using fluorescent dyes and revealed also a dose-dependent correlation for all mannose and sialic acid sugars, while glucose and galactose variants were not detected in the glycocalyx. However, incorporation efficiencies were highest when using mannose sugars in the primary hMSC. A subsequent analysis of the temporal retention of the incorporated monosaccharides showed a constant declining fluorescence signal up to 6 d for azido mannose in hMSC-TERT, whereas no signal could be detected for alkyne mannose after 2 d. Investigation of the differentiation potential and expression of different target genes revealed no impairment after incubation with mannose sugars, indicating a normal phenotype for hMSC-TERT. Following the successful establishment of the method, either a coumarin derivative or an artificial galectin 1 ligand were incorporated into the cell glycocalyx of hMSC-TERT as functional target molecule. The biophysical analysis via shear flow deformation cytometry revealed a slightly increased cell stiffness and lowered fluidity for both molecules. A further part of this project aimed to control lectin-mediated cell adhesion by artificial galectin 1 ligands. As that hypothesis was settled in the work group of Prof. Dr. Jürgen Seibel, this work supported with an initial characterization of galectin 1 as part of the hMSC biology. A stable galectin 1 expression at gene and protein level in both hMSC and hMSC-TERT could be confirmed, at which immunocytochemical stainings could detect the protein only in the glycocalyx. The treatment of hMSC-TERT with a galectin 1 ligand in different concentrations did not show an altered gene expression of galectin 1. However, these first data in addition to the investigation of stiffness confirmed the applicability of specific and artificial
IV
galectin 1 ligands in biofabrication approaches to alter cell properties of hMSC. To conclude, metabolic glycoengineering has been successfully implemented in hMSC and hMSC-TERT to introduce glycocalyx modifications which reside there for several days. A proof of concept was carried out by the increase of cell stiffness and fluidity by the incorporation of a coumarin derivative or an artificial galectin 1 ligand.
For the characterization of shear stress impact on cells after printing in thermoresponsive bioinks, the processing of hMSC-TERT (mixing or additionally printing) with Pluronic F127 or Polyoxazoline-Polyoxazine (POx-POzi) polymer solution was investigated. While there were no changes in viability when using POx-POzi bioink, processing with Pluronic F127 indicated slightly lower viability and increased apoptosis activity. Assessment of cellular responses to potential shear stress showed no reorganization of the cytoskeleton independent of the bioink, but highly increased expression of the mechanoresponsive proto-oncogene c Fos which was more pronounced when using Pluronic F127 and just mixed with the bioinks. Interestingly, processing of the mechanoresponsive reporter cell line hMSC-TERT-AP1 revealed slightly elevated mechanotransduction activity when using POx-POzi polymer and just mixed with the bioinks as well. In conclusion, hMSC-TERT embedded in thermoresponsive bioinks might shortly experience shear stress during the printing process, but that did not lead to remarkable cell damage likely due to the rheological properties of the bioinks. Furthermore, the printing experiments also suggested that cells do not sense more shear stress when additionally printed.
Infectious diseases caused by pathogenic microorganisms are one of the largest socioeconomic burdens today. Although infectious diseases have been studied for decades, in numerous cases, the precise mechanisms involved in the multifaceted interaction between pathogen and host continue to be elusive. Thus, it still remains a challenge for researchers worldwide to develop novel strategies to investigate the molecular context of infectious diseases in order to devise preventive or at least anti-infective measures. One of the major drawbacks in trying to obtain in-depth knowledge of how bacterial pathogens elicit disease is the lack of suitable infection models to authentically mimic the disease progression in humans. Numerous studies rely on animal models to emulate the complex temporal interactions between host and pathogen occurring in humans. While they have greatly contributed to shed light on these interactions, they require high maintenance costs, are afflicted with ethical drawbacks, and are not always predictive for the infection outcome in human patients. Alternatively, in-vitro two-dimensional (2D) cell culture systems have served for decades as representatives of human host environments to study infectious diseases. These cell line-based models have been essential in uncovering virulence-determining factors of diverse pathogens as well as host defense mechanisms upon infection. However, they lack the morphological and cellular complexity of intact human tissues, limiting the insights than can be gained from studying host-pathogen interactions in these systems.
The focus of this thesis was to establish and innovate intestinal human cell culture models to obtain in-vitro reconstructed three-dimensional (3D) tissue that can faithfully mimic pathogenesis-determining processes of the zoonotic bacterium Campylobacter jejuni (C. jejuni). Generally employed for reconstructive medicine, the field of tissue engineering provides excellent tools to generate organ-specific cell culture models in vitro, realistically recapitulating the distinctive architecture of human tissues. The models employed in this thesis are based on decellularized extracellular matrix (ECM) scaffolds of porcine intestinal origin. Reseeded with intestinal human cells, application of dynamic culture conditions promoted the formation of a highly polarized mucosal epithelium maintained by functional tight and adherens junctions. While most other in-vitro infection systems are limited to a flat monolayer, the tissue models developed in this thesis can display the characteristic 3D villi and crypt structure of human small intestine.
First, experimental conditions were established for infection of a previously developed, statically cultivated intestinal tissue model with C. jejuni. This included successful isolation of bacterial colony forming units (CFUs), measurement of epithelial barrier function, as well as immunohistochemical and histological staining techniques. In this way, it became possible to follow the number of viable bacteria during the infection process as well as their translocation over the polarized epithelium of the tissue model. Upon infection with C. jejuni, disruption of tight and adherens junctions could be observed via confocal microscopy and permeability measurements of the epithelial barrier. Moreover, C. jejuni wildtype-specific colonization and barrier disruption became apparent in addition to niche-dependent bacterial localization within the 3D microarchitecture of the tissue model. Pathogenesis-related phenotypes of C. jejuni mutant strains in the 3D host environment deviated from those obtained with conventional in-vitro 2D monolayers but mimicked observations made in vivo. Furthermore, a genome-wide screen of a C. jejuni mutant library revealed significant differences for bacterial factors required or dispensable for interactions with unpolarized host cells or the highly prismatic epithelium provided by the intestinal tissue model. Elucidating the role of several previously uncharacterized factors specifically important for efficient colonization of a 3D human environment, promises to be an intriguing task for future research.
At the frontline of the defense against invading pathogens is the protective, viscoelastic mucus layer overlying mucosal surfaces along the human gastrointestinal tract (GIT). The development of a mucus-producing 3D tissue model in this thesis was a vital step towards gaining a deeper understanding of the interdependency between bacterial pathogens and host-site specific mucins. The presence of a mucus layer conferred C. jejuni wildtype-specific protection against epithelial barrier disruption by the pathogen and prevented a high bacterial burden during the course of infection. Moreover, results obtained in this thesis provide evidence in vitro that the characteristic corkscrew morphology of C. jejuni indeed grants a distinct advantage in colonizing mucous surfaces.
Overall, the results obtained within this thesis highlight the strength of the tissue models to combine crucial features of native human intestine into accessible in-vitro infection models. Translation of these systems into infection research demonstrated their ability to expose in-vivo like infection outcomes. While displaying complex organotypic architecture and highly prismatic cellular morphology, these tissue models still represent an imperfect reflection of human tissue. Future advancements towards inclusion of human primary and immune cells will strive for even more comprehensive model systems exhibiting intricate multicellular networks of in-vivo tissue. Nevertheless, the work presented in this thesis emphasizes the necessity to investigate host-pathogen interactions in infection models authentically mimicking the natural host environment, as they remain among the most vital parts in understanding and counteracting infectious diseases.
Within this thesis, three main approaches for the assessment and investigation of altered hemodynamics like wall shear stress, oscillatory shear index and the arterial pulse wave velocity in atherosclerosis development and progression were conducted:
1. The establishment of a fast method for the simultaneous assessment of 3D WSS and PWV in the complete murine aortic arch via high-resolution 4D-flow MRI
2. The utilization of serial in vivo measurements in atherosclerotic mouse models using high-resolution 4D-flow MRI, which were divided into studies describing altered hemodynamics in late and early atherosclerosis
3. The development of tissue-engineered artery models for the controllable application and variation of hemodynamic and biologic parameters, divided in native artery models and biofabricated artery models, aiming for the investigation of the relationship between atherogenesis and hemodynamics
Chapter 2 describes the establishment of a method for the simultaneous measurement of 3D WSS and PWV in the murine aortic arch at, using ultra high-field MRI at 17.6T [16], based on the previously published method for fast, self-navigated wall shear stress measurements in the murine aortic arch using radial 4D-phase contrast MRI at 17.6 T [4]. This work is based on the collective work of Dr. Patrick Winter, who developed the method and the author of this thesis, Kristina Andelovic, who performed the experiments and statistical analyses. As the method described in this chapter is basis for the following in vivo studies and undividable into the sub-parts of the contributors without losing important information, this chapter was not split into the single parts to provide fundamental information about the measurement and analysis methods and therefore better understandability for the following studies. The main challenge in this chapter was to overcome the issue of the need for a high spatial resolution to determine the velocity gradients at the vascular wall for the WSS quantification and a high temporal resolution for the assessment of the PWV without prolonging the acquisition time due to the need for two separate measurements. Moreover, for a full coverage of the hemodynamics in the murine aortic arch, a 3D measurement is needed, which was achieved by utilization of retrospective navigation and radial trajectories, enabling a highly flexible reconstruction framework to either reconstruct images at lower spatial resolution and higher frame rates for the acquisition of the PWV or higher spatial resolution and lower frame rates for the acquisition of the 3D WSS in a reasonable measurement time of only 35 minutes. This enabled the in vivo assessment of all relevant hemodynamic parameters related to atherosclerosis development and progression in one experimental session. This method was validated in healthy wild type and atherosclerotic Apoe-/- mice, indicating no differences in robustness between pathological and healthy mice.
The heterogeneous distribution of plaque development and arterial stiffening in atherosclerosis [10, 12], however, points out the importance of local PWV measurements. Therefore, future studies should focus on the 3D acquisition of the local PWV in the murine aortic arch based on the presented method, in order to enable spatially resolved correlations of local arterial stiffness with other hemodynamic parameters and plaque composition.
In Chapter 3, the previously established methods were used for the investigation of changing aortic hemodynamics during ageing and atherosclerosis in healthy wild type and atherosclerotic Apoe-/- mice using the previously established methods [4, 16] based on high-resolution 4D-flow MRI. In this work, serial measurements of healthy and atherosclerotic mice were conducted to track all changes in hemodynamics in the complete aortic arch over time. Moreover, spatially resolved 2D projection maps of WSS and OSI of the complete aortic arch were generated. This important feature allowed for the pixel-wise statistical analysis of inter- and intragroup hemodynamic changes over time and most importantly – at a glance. The study revealed converse differences of local hemodynamic profiles in healthy WT and atherosclerotic Apoe−/− mice, with decreasing longWSS and increasing OSI, while showing constant PWV in healthy mice and increasing longWSS and decreasing OSI, while showing increased PWV in diseased mice. Moreover, spatially resolved correlations between WSS, PWV, plaque and vessel wall characteristics were enabled, giving detailed insights into coherences between hemodynamics and plaque composition. Here, the circWSS was identified as a potential marker of plaque size and composition in advanced atherosclerosis. Moreover, correlations with PWV values identified the maximum radStrain could serve as a potential marker for vascular elasticity. This study demonstrated the feasibility and utility of high-resolution 4D flow MRI to spatially resolve, visualize and analyze statistical differences in all relevant hemodynamic parameters over time and between healthy and diseased mice, which could significantly improve our understanding of plaque progression towards vulnerability. In future studies the relation of vascular elasticity and radial strain should be further investigated and validated with local PWV measurements and CFD.
Moreover, the 2D histological datasets were not reflecting the 3D properties and regional characteristics of the atherosclerotic plaques. Therefore, future studies will include 3D plaque volume and composition analysis like morphological measurements with MRI or light-sheet microscopy to further improve the analysis of the relationship between hemodynamics and atherosclerosis.
Chapter 4 aimed at the description and investigation of hemodynamics in early stages of atherosclerosis. Moreover, this study included measurements of hemodynamics at baseline levels in healthy WT and atherosclerotic mouse models. Due to the lack of hemodynamic-related studies in Ldlr-/- mice, which are the most used mouse models in atherosclerosis research together with the Apoe-/- mouse model, this model was included in this study to describe changing hemodynamics in the aortic arch at baseline levels and during early atherosclerosis development and progression for the first time. In this study, distinct differences in aortic geometries of these mouse models at baseline levels were described for the first time, which result in significantly different flow- and WSS profiles in the Ldlr-/- mouse model. Further basal characterization of different parameters revealed only characteristic differences in lipid profiles, proving that the geometry is highly influencing the local WSS in these models. Most interestingly, calculation of the atherogenic index of plasma revealed a significantly higher risk in Ldlr-/- mice with ongoing atherosclerosis development, but significantly greater plaque areas in the aortic arch of Apoe-/- mice. Due to the given basal WSS and OSI profile in these two mouse models – two parameters highly influencing plaque development and progression – there is evidence that the regional plaque development differs between these mouse models during very early atherogenesis.
Therefore, future studies should focus on the spatiotemporal evaluation of plaque development and composition in the three defined aortic regions using morphological measurements with MRI or 3D histological analyses like LSFM. Moreover, this study offers an excellent basis for future studies incorporating CFD simulations, analyzing the different measured parameter combinations (e.g., aortic geometry of the Ldlr-/- mouse with the lipid profile of the Apoe-/- mouse), simulating the resulting plaque development and composition. This could help to understand the complex interplay between altered hemodynamics, serum lipids and atherosclerosis and significantly improve our basic understanding of key factors initiating atherosclerosis development.
Chapter 5 describes the establishment of a tissue-engineered artery model, which is based on native, decellularized porcine carotid artery scaffolds, cultured in a MRI-suitable bioreactor-system [23] for the investigation of hemodynamic-related atherosclerosis development in a controllable manner, using the previously established methods for WSS and PWV assessment [4, 16]. This in vitro artery model aimed for the reduction of animal experiments, while simultaneously offering a simplified, but completely controllable physical and biological environment. For this, a very fast and gentle decellularization protocol was established in a first step, which resulted in porcine carotid artery scaffolds showing complete acellularity while maintaining the extracellular matrix composition, overall ultrastructure and mechanical strength of native arteries. Moreover, a good cellular adhesion and proliferation was achieved, which was evaluated with isolated human blood outgrowth endothelial cells. Most importantly, an MRI-suitable artery chamber was designed for the simultaneous cultivation and assessment of high-resolution 4D hemodynamics in the described artery models. Using high-resolution 4D-flow MRI, the bioreactor system was proven to be suitable to quantify the volume flow, the two components of the WSS and the radStrain as well as the PWV in artery models, with obtained values being comparable to values found in literature for in vivo measurements. Moreover, the identification of first atherosclerotic processes like intimal thickening is achievable by three-dimensional assessment of the vessel wall morphology in the in vitro models. However, one limitation is the lack of a medial smooth muscle cell layer due to the dense ECM. Here, the utilization of the laser-cutting technology for the generation of holes and / or pits on a microscale, eventually enabling seeding of the media with SMCs showed promising results in a first try and should be further investigated in future studies. Therefore, the proposed artery model possesses all relevant components for the extension to an atherosclerosis model which may pave the way towards a significant improvement of our understanding of the key mechanisms in atherogenesis.
Chapter 6 describes the development of an easy-to-prepare, low cost and fully customizable artery model based on biomaterials. Here, thermoresponsive sacrificial scaffolds, processed with the technique of MEW were used for the creation of variable, biomimetic shapes to mimic the geometric properties of the aortic arch, consisting of both, bifurcations and curvatures. After embedding the sacrificial scaffold into a gelatin-hydrogel containing SMCs, it was crosslinked with bacterial transglutaminase before dissolution and flushing of the sacrificial scaffold. The hereby generated channel was subsequently seeded with ECs, resulting in an easy-to-prepare, fast and low-cost artery model. In contrast to the native artery model, this model is therefore more variable in size and shape and offers the possibility to include smooth muscle cells from the beginning. Moreover, a custom-built and highly adaptable perfusion chamber was designed specifically for the scaffold structure, which enabled a one-step creation and simultaneously offering the possibility for dynamic cultivation of the artery models, making it an excellent basis for the development of in vitro disease test systems for e.g., flow-related atherosclerosis research. Due to time constraints, the extension to an atherosclerosis model could not be achieved within the scope of this thesis. Therefore, future studies will focus on the development and validation of an in vitro atherosclerosis model based on the proposed bi- and three-layered artery models.
In conclusion, this thesis paved the way for a fast acquisition and detailed analyses of changing hemodynamics during atherosclerosis development and progression, including spatially resolved analyses of all relevant hemodynamic parameters over time and in between different groups. Moreover, to reduce animal experiments, while gaining control over various parameters influencing atherosclerosis development, promising artery models were established, which have the potential to serve as a new platform for basic atherosclerosis research.
Articular cartilage defects represent one of the most challenging clinical problem for orthopedic surgeons and cartilage damage after trauma can result in debilitating joint pain, functional impairment and in the long-term development of osteoarthritis. The lateral cartilage-cartilage integration is crucial for the long-term success and to prevent further tissue degeneration. Tissue adhesives and sealants are becoming increasingly more popular and can be a beneficial approach in fostering tissue integration, particularly in tissues like cartilage where alternative techniques, such as suturing, would instead introduce further damage. However, adhesive materials still require optimization regarding the maximization of adhesion strength on the one hand and long-term tissue integration on the other hand. In vitro models can be a valuable support in the investigation of potential candidates and their functional mechanisms. For the conducted experiments within this work, an in vitro disc/ring model obtained from porcine articular cartilage tissue was established. In addition to qualitative evaluation of regeneration, this model facilitates the implementation of biomechanical tests to quantify cartilage integration strength. Construct harvesting for histology and other evaluation methods could be standardized and is ethically less questionable compared to in vivo testing. The opportunity of cell culture technique application for the in vitro model allowed a better understanding of cartilage integration processes.
Tissue bonding requires chemical or physical interaction of the adhesive material and the substrate. Adhesive hydrogels can bind to the defect interface and simultaneously fill the gap of irregularly shaped defect voids. Fibrin gels are derived from the physiological blood-clot formation and are clinically applied for wound closure. Within this work, comparisons of different fibrin glue formulations with the commercial BioGlue® were assessed, which highlighted the need for good biocompatibility when applied on cartilage tissue in order to achieve satisfying long-term integration. Fibrin gel formulations can be adapted with regard to their long-term stability and when applied on cartilage disc/ring constructs improved integrative repair is observable. The kinetic of repairing processes was investigated in fibrin-treated cartilage composites as part of this work. After three days in vitro cultivation, deposited extracellular matrix (ECM) was obvious at the glued interface that increased further over time. Interfacial cell invasion from the surrounding native cartilage was detected from day ten of tissue culture. The ECM formation relies on molecular factors, e.g., as was shown representatively for ascorbic acid, and contributes to increasing integration strengths over time. The experiments performed with fibrin revealed that the treatment with a biocompatible adhesive that allows cartilage neosynthesis favors lateral cartilage integration in the long term. However, fibrin has limited immediate bonding strength, which is disadvantageous for use on articular cartilage that is subject to high mechanical stress. The continuing aim of this thesis was to further develop adhesive mechanisms and new adhesive hydrogels that retain the positive properties of fibrin but have an increased immediate bonding strength.
Two different photochemical approaches with the advantage of on-demand bonding were tested. Such treatment potentially eases the application for the professional user. First, an UV light induced crosslinking mechanism was transferred to fibrin glue to provide additional bonding strength. For this, the cartilage surface was functionalized with highly reactive light-sensitive diazirine groups, which allowed additional covalent bonds to the fibrin matrix and thus increased the adhesive strength. However, the disadvantages of this approach were the multi-step bonding reactions, the need for enzymatic pretreatment of the cartilage, expensive reagents, potential UV-light damage, and potential toxicity hazards. Due to the mentioned disadvantages, no further experiments, including long-term culture, were carried out. A second photosensitive approach focused on blue light induced crosslinking of fibrinogen (RuFib) via a photoinitiator molecule instead of using thrombin as a crosslinking mediator like in normal fibrin glue. The used ruthenium complex allowed inter- and intramolecular dityrosine binding of fibrinogen molecules. The advantage of this method is a one-step curing of fibrinogen via visible light that further achieved higher adhesive strengths than fibrin. In contrast to diazirine functionalization of cartilage, the ruthenium complex is of less toxicological concern. However, after in vitro cultivation of the disc/ring constructs, there was a decrease in integration strength. Compared to fibrin, a reduced cartilage synthesis was observed at the defect. It is also disadvantageous that a direct adjustment of the adhesive can only be made via protein concentration, since fibrinogen is a natural protein that has a fixed number of tyrosine binding sites without chemical modification.
An additional cartilage adhesive was developed that is based on a mussel-inspired adhesive mechanism in which reactivity to a variety of substrates is enabled via free DOPA amino acids. DOPA-based adhesion is known to function in moist environments, a major advantage for application on water-rich cartilage tissue surrounded by synovial liquid. Reactive DOPA groups were synthetically attached to a polymer, here POx, to allow easy chemical modifiability, e.g. insertion of hydrolyzable ester motifs for tunable degradation. The possibility of preparing an adhesive hybrid hydrogel of POx in combination with fibrinogen led to good cell compatibility as was similarly observed with fibrin, but with increased immediate adhesive strength. Degradation could be adjusted by the amount of ester linkages on the POx and a direct influence of degradation rates on the development of integration in the in vitro model could be shown.
Hydrogels are well suited to fill defect gaps and immediate integration can be achieved via adhesive properties. The results obtained show that for the success of long-term integration, a good ability of the adhesive to take up synthesized ECM components and cells to enable regeneration is required. The degradation kinetics of the adhesive must match the remodeling process to avoid intermediate loss of integration power and to allow long-term firm adhesion to the native tissue.
Hydrogels are not only important as adhesives for smaller lesions, but also for filling large defect volumes and populating them with cells to produce tissue engineered cartilage. Many different hydrogel types suitable for cartilage synthesis are reported in the literature. A long-term stable fibrin formulation was tested in this work not only as an adhesive but also as a bulk hydrogel construct. Agarose is also a material widely used in cartilage tissue engineering that has shown good cartilage neosynthesis and was included in integration assessment. In addition, a synthetic hyaluronic acid-based hydrogel (HA SH/P(AGE/G)) was used. The disc/ring construct was adapted for such experiments and the inner lumen of the cartilage ring was filled with the respective hydrogel. In contrast to agarose, fibrin and HA-SH/P(AGE/G) gels have a crosslink mechanism that led to immediate bonding upon contact with cartilage during curing. The enhanced cartilage neosynthesis in agarose compared to the other hydrogel types resulted in improved integration during in vitro culture. This shows that for the long-term success of a treatment, remodeling of the hydrogel into functional cartilage tissue is a very high priority. In order to successfully treat larger cartilage defects with hydrogels, new materials with these properties in combination with chemical modifiability and a direct adhesion mechanism are one of the most promising approaches.
In Deutschland erkranken jährlich etwa 500.000 Menschen an Krebs, wovon circa
12.000 die Diagnose „Leukämie“ gestellt bekommen [1]. Unter den Leukämien weist
die akute myeloische Leukämie (AML) die ungünstigste Prognose auf, sodass hier
erheblicher Forschungsbedarf besteht. Zusätzlich schnitten viele potentielle Therapeutika,
die sich in bisherigen präklinischen Testsystemen als vielversprechend erwiesen
haben, in klinischen Studien schlecht ab [8]. Ziel dieser Arbeit war daher die
Etablierung eines 3D in vitro Blutgefäß-/Gewebemodells als verbessertes präklinisches
System zur Testung von Therapeutika, die zur erfolgreichen Behandlung von
Leukämien beitragen sollen.
Das 3D Blutgefäßmodell bestand aus humanen primären Endothelzellen, welche
als Monolayer auf der Serosaseite einer dezellularisierten, porzinen, intestinalen Kollagenmatrix
(SIS-Ser) wuchsen. Nach 14-tägiger Zellkultur wurden dem Versuchsansatz
entsprechend nichtadhärente THP-1 Zellen (AML-M5-Zelllinie) und Tipifarnib
oder entsprechende Kontrolllösungen beziehungsweise bimolekulare Antikörperkonstrukte
mit PBMCs als Effektorzellen hinzupipettiert. Nach 5-tägiger Inkubation
mit Tipifarnib beziehungsweise 24-stündiger Behandlung mit Antikörperkonstrukten
wurde der therapiebedingte Anstieg der Apoptoserate in den malignen THP-1 Zellen
mittels durchflusszytometrischer Analyse der Modellüberstände ermittelt. Zum
Ausschluss verbliebener und durchflusszytometrisch zu analysierender Zellen wurde,
stellvertretend für alle Suspensionszellen, eine Anti-CD13/DAB-Färbung durchgeführt,
welche negativ ausfiel. Mögliche Kollateralschäden am Endothel wurden
mittels histologischen Färbemethoden an Gewebeparaffinschnitten untersucht.
In der Durchflusszytometrie zeigte Tipifarnib sowohl im 2D als auch im 3D Modell
äquivalente, dosisabhängige und antileukämische Auswirkungen auf die THP-1 Zellen.
Bei Applikation der Antikörperkonstrukte ließ lediglich die Kombination beider Hemibodies signifikante Effekte auf die THP-1 Zellen erkennen. Dabei zeigten sich
bei konstanten Konzentrationen der Antikörperkonstrukte im 3D Modell deutlich
höhere Apoptoseraten (58%) als im 2D Modell (38%). Stellt man Vergleiche von
Tipifarnib mit den T-Zell-rekrutierenden Antikörperkonstrukten an, so ließen sich
im 2D Modell ähnliche Apoptoseraten in den THP-1 Zellen erzielen (jeweils 38% bei
Anwendung von 500 nM Tipifarnib). In den 3D Modellen erzielten jedoch die niedriger
konzentrierten Antikörperkonstrukte bei kürzerer Inkubationsdauer eine noch
höhere spezifische Apoptoserate in den THP-1 Zellen (im Mittel 58%) als 500 nM
Tipifarnib (mittlere Apoptoserate 40%). Bezüglich der Nebenwirkungen ließ sich
im 3D Modell nach Applikation von Antikörperkonstrukten kein wesentlicher Einfluss
auf das Endothel erkennen, während Tipifarnib/DMSO als auch die mit DMSO
versetzten Kontrolllösungen zu einer dosisabhänigen Destruktion des ursprünglichen
Endothelzellmonolayers führten. Damit stellt die hier beschriebene, hoch spezifische,
Hemibody-vermittelte Immuntherapie einen vielversprechenden Ansatz für zukünftige
onkologische Therapien dar.
Mithilfe des etablierten humanen 3D in vitro Modells konnte im Vergleich zur
konventionellen Zellkultur eine natürlichere Mikroumgebung für Zellen geschaffen
und die Auswirkungen der Testsubstanzen sowohl auf maligne Zellen, als auch auf
die Gefäßstrukturen untersucht werden.
Improved treatment options for the degenerative joint disease osteoarthritis (OA) are of major interest, since OA is one of the main sources of disability, pain, and socioeconomic burden worldwide [202]. According to epidemiological data, already 27 million people suffer from OA in the US [23]. Moreover, the WHO expects OA to be the fourth most common cause of disability in 2020 [203], illustrating the need for effective and long-lasting therapy options of severe cartilage defects. Despite numerous clinically available products for the treatment of cartilage defects [62], the development of more cartilage-specific materials is still at the beginning.
Hyaluronic acid (HA) is a major component of the cartilaginous extracellular matrix (ECM) and inherently creates a cell-friendly niche by providing cell attachment and migration sites. Furthermore, it is known that the functional groups of HA are well suited for chemical modification. These characteristics render HA an attractive material for hydrogel-based tissue engineering approaches. Poly(glycidol) (PG) as chemical crosslinker basically features similar chemical characteristics as the widely used poly(ethylene glycol) (PEG), but provides additional side groups at each repeating unit that can be further chemically functionalized. With the introduction of PG as multifunctional crosslinker for HA gels, a higher cross-linking density and, accordingly, a greater potential for biomimetic functionalization may be achieved. However, despite the mentioned potential benefits, PG has not been used for cartilage regeneration approaches so far.
The initial aim of the study was to set up and optimize a HA-based hydrogel for the chondrogenic differentiation of mesenchymal stromal cells (MSCs), using different amounts and variations of cross-linkers. Therefore, the hydrogel composition was optimized by the utilization of different PEG diacrylate (PEGDA) concentrations to cross-link thiol-modified HA (Glycosil, HA-SH) via Michael addition. We aimed to generate volumestable scaffolds that simultaneously enable a maximum of ECM deposition. Histological and biochemical analysis showed 0.4% PEGDA as the most suitable concentration for these requirements (Section 5.1.2).
In order to evaluate the impact of a differently designed cross-linker on MSC chondrogenesis, HA-SH was cross-linked with PEGTA (0.6%) and compared to PEGDA (0.4%) in a next step. Following this, acrylated PG (PG-Acr) as multifunctional cross-linker alternative to acrylated PEG was evaluated. It provides around five times more functional groups when utilized in PG-Acr (0.6%) HA-SH hydrogels compared to PEGTA (0.6%) HA-SH hydrogels, thus enabling higher degrees of biomimetic functionalization. Determination of cartilage-specific ECM components showed no substantial differences between both cross-linkers while the deposition of cartilaginous matrix appeared more homogeneous in HA-SH PG-Acr gels. Taken together, we were able to successfully increase the possibilities for biomimetic functionalization in the developed HA-SH hydrogel system by the introduction of PG-Acr as cross-linker without negatively affecting MSC chondrogenesis (Section 5.1.3).
The next part of this thesis focused extensively on the biomimetic functionalization of PG-Acr (0.6%) cross-linked HA-SH hydrogels. Here, either biomimetic peptides or a chondrogenic growth factor were covalently bound into the hydrogels.
Interestingly, the incorporation of a N-cadherin mimetic (HAV), a collagen type II binding (KLER), or a cell adhesion-mediating peptide (RGD) yielded no improvement of MSC chondrogenesis. For instance, the covalent binding of 2.5mM HAV changed morphology of cell nuclei and reduced GAG production while the incorporation of 1.0mM RGD impaired collagen production. These findings may be attributed to the already supportive conditions of the employed HA-based hydrogels for chondrogenic differentiation. Most of the previous studies reporting positive peptide effects on chondrogenesis have been carried out in less supportive PEG hydrogels or in significantly stiffer MeHA-based hydrogels [99, 101, 160]. Thus, the incorporation of peptides may be more important under unfavorable conditions while inert gel systems may be useful for studying single peptide effects (Section 5.2.1).
The chondrogenic factor transforming growth factor beta 1 (TGF-b1) served as an example for growth factor binding to PG-Acr. The utilization of covalently bound TGF-b1 may thereby help overcome the need for repeated administration of TGF-b1 in in vivo applications, which may be an advantage for potential clinical application. Thus, the effect of covalently incorporated TGF-b1 was compared to the effect of the same amount of TGF-b1 without covalent binding (100nM TGF-b1) on MSC chondrogenesis. It was successfully demonstrated that covalent incorporation of TGF-b1 had a significant positive effect in a dose-dependent manner. Chondrogenesis of MSCs in hydrogels with covalently bound TGF-b1 showed enhanced levels of chondrogenesis compared to hydrogels into which TGF-b1 was merely mixed, as shown by stronger staining for GAGs, total collagen, aggrecan and collagen type II. Biochemical evaluation of GAG and collagen amounts, as well as Western blot analysis confirmed the histological results. Furthermore, the positive effect of covalently bound TGF-b1 was shown by increased expression of chondrogenic marker genes COL2A1, ACAN and SOX9. In summary, covalent growth factor incorporation utilizing PG-Acr as cross-linker demonstrated significant positive effects on chondrogenic differentiation of MSCs (Section 5.2.2).
In general, PG-Acr cross-linked HA hydrogels generated by Michael addition represent a versatile hydrogel platform due to their high degree of acrylate functionality. These hydrogels may further offer the opportunity to combine several biological modifications, such as the incorporation of biomimetic peptides together with growth factors, within one cell carrier.
A proof-of-principle experiment demonstrated the suitability of pure PG gels for studying single peptide effects. Here, the hydrogels were generated by the utilization of thiol-ene-click reaction. In this setting, without the supportive background of hyaluronic acid, MSCs showed enhanced chondrogenic differentiation in response to the incorporation of 1.0mM HAV. This was demonstrated by staining for GAGs, the cartilage-specific ECM molecules aggrecan and type II collagen, and by increased GAG and total collagen amounts shown by biochemical analysis. Thus, pure PG gels exhibit the potential to study the effects and interplay of peptides and growth factors in a highly modifiable, bioinert hydrogel environment.
The last section of the thesis was carried out as part of the EU project HydroZONES that aims to develop and generate zonal constructs. The importance of zonal organization has attracted increased attention in the last years [127, 128], however, it is still underrepresented in tissue engineering approaches so far. Thus, the feasibility of zonal distribution of cells in a scaffold combining two differently composed hydrogels was investigated. A HA-SH(FMZ) containing bottom layer was generated and a pure PG top layer was subsequently cast on top of it, utilizing both times thiol-ene-click reaction. Indeed, stable, hierarchical constructs were generated that allowed encapsulated MSCs to differentiate chondrogenically in both zones as shown by staining for GAGs and collagen type II, and by quantification of GAG amount. Thus, the feasibility of differently composed zonal hydrogels utilizing PG as a main component was successfully demonstrated (Section 5.4).
With the first-time utilization and evaluation of PG-Acr as versatile multifunctional cross-linker for the preparation of Michael addition-generated HA-SH hydrogels in the context of cartilage tissue engineering, a highly modifiable HA-based hydrogel system was introduced. It may be used in future studies as an easily applicable and versatile toolbox for the generation of biomimetically functionalized hydrogels for cell-based cartilage regeneration. The introduction of reinforcement structures to enhance mechanical resistance may thereby further increase the potential of this system for clinical applications.
Additionally, it was also demonstrated that thiol-ene clickable hydrogels can be used for the generation of cell-laden, pure PG gels or for the generation of more complex, coherent zonal constructs. Furthermore, thiol-ene clickable PG hydrogels have already been further modified and successfully been used in 3D bioprinting experiments [204]. 3D bioprinting, as part of the evolving biofabrication field [205], offers the possibilities to generate complex and hierarchical structures, and to exactly position defined layers, yet at the same time alters the requirements for the utilized hydrogels [159, 206–209]. Since a robust chondrogenesis of MSCs was demonstrated in the thiol-ene clickable hydrogel systems, they may serve as a basis for the development of hydrogels as so called bioinks which may be utilized in more sophisticated biofabrication processes.
Das Ziel dieser Arbeit war die Entwicklung eines vaskularisierten, autologen Implantats zur Behandlung von schweren Verletzungen der Trachea im Umfeld der guten Herstellungspraxis. Die Matrix besteht aus einem circa 14 cm langen Stück porcinen, azellularisierten Dünndarm und BioVaSc (Biological Vascularized Scaffold) genannt wird. Dieses wird dann mit isolierten und kultivierten Zellen des Patienten besiedelt und reift für zwei Wochen in einem speziell hierfür entwickelten Bioreaktorsystem. Danach erfolgt die Analyse bzw. die Implantation in den Patienten.
Nach der Präparation und Überprüfung der Qualität, erfolgte die Azellularisierung der BioVaSc zur Entfernung der porcinen Zellen und der enzymatische Abbau der DNS, unter Erhalt des natürlichen Gefäßsystems. Hierfür ist Natriumdesoxycholat verwendet worden, wobei Rückstände davon das Ansiedeln der autologen Zellen negativ beeinflussen könnten. Deshalb wurde ein Test etabliert, mit dessen Hilfe, das Auswaschen der Azellularisierungsdetergenz bis zur Sterilisation nachweisbar war. Des Weiteren könnten in der BioVaSc natürlicherweise enthaltene Endotoxine Immunreaktionen im späteren Empfänger auslösen. Die gesetzlichen Grenzwerte konnten durch Modifikationen des Protokolls, unter Berücksichtigung der guten Herstellungspraxis, erreicht werden. Weiterhin konnte histologisch eine weitgehende DNS- und Zellfreiheit nachgewiesen werden, in der quantitativen Analyse ergab sich eine Abreicherung von 97% im Vergleich zum Ausgangsmaterial. Zur Bestimmung der funktionellen Stabilität der azellularisierten Matrix wurde die maximal tolerable Zugspannung bestimmt.
Zur Besiedlung der Gefäße der Matrix wurden mikrovaskuläre Endothelzellen und für das Lumen Fibroblasten und Skelettmuskelzellen verwendet. Die Protokolle zur Isolation und Kultur sind hierzu unter den Bedingungen der guten Herstellungspraxis etabliert, optimiert und mit, soweit möglich, zertifizierten Reagenzien durchgeführt worden. Zur genauen Charakterisierung der Zellen wurden diese immunhistologisch über vier Passagen analysiert, wobei sich je nach Zelltyp und Differenzierungsstadium unterschiedliche Expressionsmuster ergaben.
Zur Herstellung des autologen Implantats wurden zunächst die mikrovaskulären Endothelzellen in das vorhandene Gefäßsystem der BioVaSc eingebracht und dann für sieben Tage im etablierten Bioreaktorsystem kultiviert. Danach erfolgte die Besiedlung des Lumens mit Skelettmuskelzellen und Fibroblasten und die weitere siebentägige Kultur im Bioreaktorsystem.
Die Besiedlung des Gefäßsystems musste optimiert werden, um sowohl die Besiedlungsdichte zu steigern als auch die Effizienz zu erhöhen. Das Lumen konnte mit der etablierten Methode vollständig besiedelt werden. Nach vierzehntägiger Kultur im Bioreaktorsystem erfolgte die Kontrolle der Zellvitalität, wobei sowohl in den Gefäßstrukturen als auch im Lumen der BioVaSc vitale Zellen nachweisbar waren. Histologische Analysen zeigten, dass die mikrovaskulären Endothelzellen in den verbliebenen vaskulären Strukturen CD31 und den vWF exprimieren. Wohingegen die histologische Unterscheidung zwischen Fibroblasten und Skelettmuskelzellen nicht möglich ist.
Zusätzlich wurde die BioVaSc mit upcyte mvEC der Firma Medicyte besiedelt. Nach der vierzehntägigen Kultur im Bioreaktorsystem waren die Zellen sowohl in den Gefäßstrukturen als auch im Lumen und im Bindegewebe vital nachweisbar. In der histologischen Analyse konnte die Ausbildung von CD31, eNOS und vWF nachgewiesen werden. Des Weiteren wurde die Matrix mit mesenchymalen Stammzellen besiedelt, um zu analysieren, ob die Scherkräfte die Ausbildung endothelialer Marker stimulieren können. Nach vierzehntägiger Kultur konnte in den histologischen Analysen keine Ausbildung von CD31 oder dem vWF gefunden, allerdings vitale Zellen nachgewiesen werden.
Da Defekte im Bereich der oralen Schleimhaut infolge von Traumata, angeborenen sowie erworbenen Krankheiten die ungestörte Funktionsweise in Bezug auf Atmung, Nahrungsaufnahme und Sprache des Menschen empfindlich beeinträchtigen und ein adäquater, alle Funktionen wiederherstellender Wundverschluss mit dem limitierten Eigengewebe oft nicht möglich ist, bietet das Tissue Engineering durch die Entwicklung eines Hautäquivalents eine aussichtsreiche Alternative. Um eine ausreichende Menge an Zellen für die Herstellung eines autologen Transplantates in kurzer Zeit zur Verfügung zu stellen, sollte in der vorliegenden Arbeit eine Methode zur Steigerung der Proliferationsfähigkeit primärer humaner Keratinozyten aus oraler Mukosa im Zellkultursystem etabliert werden. Dazu mussten zunächst über die Explantation von Gewebeproben gesunder Patienten orale Schleimhautzellen gewonnen und die primären Keratinozyten von den mitwachsenden Fibroblasten isoliert werden. Dies wurde durch chemische und mechanische Separationsmethoden erreicht. Die Kultivierung der exprimierten Zellen erfolgte unter ständiger Beobachtung und physiologischen Bedingungen über einen Zeitraum von mehreren Wochen. Nach Konfluenz der zweiten Passage wurden die Zellen geerntet und für die Versuche vorbereitet. Die Steigerung der Proliferationsfähigkeit der Keratinozyten sollte durch die Anreicherung epidermaler Stammzellen erreicht werden, da diese insbesondere durch ihre Fähigkeit zur asymmetrischen Teilung die Grundlage für die Regeneration, Differenzierung und Homöostase des Gewebes bilden. Eine Möglichkeit zur Isolation von Zellen mit Stammzelleigenschaften stellt die Adhäsion an beschichteten Zellkulturgefäßen dar. Die Affinität des hauptsächlich in Stammzellen vorkommenden ß1‐Integrin‐Rezeptors zu Bestandteilen der Basalmembran wie Kollagen‐IV und Laminin sollte die Trennung hoch proliferativer Zellen von weniger teilungsaktiven Zellen leisten und das Protein indirekt als Marker für die Stammzellen fungieren. Über die Adhäsion der Keratinozyten an mit den Komponenten Kollagen‐IV und Laminin beschichteten Gefäßen ließen sich zwei Zellpopulationen (adhärente und nicht-adhärente Zellen) gewinnen. Unabhängig von der verwendeten Adhäsionskomponente zeigten die Fraktionen den charakteristischen Wachstumsverlauf (lag‐Phase, log‐ Phase, stationäre Phase und Absterbephase) in vitro kultivierter Zellen, allerdings konnte kein signifikanter Unterschied in Bezug auf die Vitalität und die Proliferationskinetik der Keratinozyten festgestellt werden. Eine nach der geleisteten Auftrennung der Keratinozyten zwischengeschaltete Analyse und Identifikation von Stammzellen mittels ß1‐Integrin‐Marker (z.B. durch einen Immunfluoreszenztest) könnte klären ob die adhärente Population überhaupt einen erhöhten Anteil an hoch proliferativen Keratinozyten beinhaltet oder ob die zahlreichen notwendigen, aber für die Zellen belastenden, Zwischenschritte der hier angewendeten indirekten Methode auslösend für die geringen Unterschiede sind. In Anlehnung an die von Stein et al. erarbeiteten guten Ergebnisse bezüglich der Proliferationskapazität oraler Keratinozyten nach Adhäsion an Kollagen‐IV‐beschichteten Zellkulturgefäßen wurde bei der vorliegenden Arbeit auf die aufwändige immunhistochemische Untersuchung verzichtet. Ein verstärktes Wachstum der adhärenten Population konnte nur bei vereinzelten Proben festgestellt werden; insgesamt konnte die prioritär gewünschte Steigerung der Proliferation primärer humaner Keratinozyten im Zellkultursystem zur raschen Bereitstellung von Zellen für die Entwicklung eines autologen Mundschleimhaut‐Transplantates nicht erreicht werden. Die drei angewandten Verfahren zur Erfassung der Quantität führten hinsichtlich der Wachstumssteigerung zu ähnlichen Ergebnissen. Da sie aber zum einen durch das Wegfallen der für die Zellzählung und den WST‐1‐Test notwendigen Zwischenschritte eine non‐invasive (ohne mechanische Irritation und Interaktion mit Zusatzstoffen), d.h. für die Zellen schonende Methode darstellt und sich zum anderen die Ergebnisse der Real-Time-Zellanalyse, im Gegensatz zur Endpunkt-Messung, direkt auf die vorangegangenen Messungen beziehen, überzeugte die Auswertung mittels Impedanzmessung in Genauigkeit und Darstellung der Veränderung des Zellwachstums über die Zeit.
According to the WHO, foodborne derived enteric infections are a global disease burden and often manifest in diseases that can potentially reach life threatening levels, especially in developing countries. These diseases are caused by a variety of enteric pathogens and affect the gastrointestinal tract, from the gastric to the intestinal to the rectal tissue. Although the complex mucosal structure of these organs is usually well prepared to defend the body against harmful agents, specialised pathogens such as Salmonella enterica can overcome the intestinal defence mechanism. After ingestion, Salmonella are capable of colonising the gut and establishing their proliferative niche, thereby leading to inflammatory processes and tissue damage of the host epithelium. In order to understand these processes, the scientific community in the last decades mostly used cell line based in vitro approaches or in vivo animal studies. Although these approaches provide fundamental insights into the interactions between bacteria and host cells, they have limited applicability to human pathology. Therefore, tissue engineered primary based approaches are important for modern infection research. They exhibit the human complexity better than traditional cell lines and can mimic human-obligate processes in contrast to animal studies.
Therefore, in this study a tissue engineered human primary model of the small intestinal epithelium was established for the application of enteric infection research with the exemplary pathogen Salmonella Typhimurium.
To this purpose, adult stem cell derived intestinal organoids were used as a primary human cell source to generate monolayers on biological or synthetic scaffolds in a Transwell®-like setting. These tissue models of the intestinal epithelium were examined for their comparability to the native tissue in terms of morphology, morphometry and barrier function. Further, the gene expression profiles of organotypical mucins, tight junction-associated proteins and claudins were investigated. Overall, the biological scaffold-based tissue models showed higher similarity to the native tissue - among others in morphometry and polarisation. Therefore, these models were further characterised on cellular and structural level. Ultrastructural analysis demonstrated the establishment of characteristic microvilli and tight-junction connections between individual epithelial cells. Furthermore, the expression pattern of typical intestinal epithelial protein was addressed and showed in vivo-like localisation. Interested in the cell type composition, single cell transcriptomic profiling revealed distinct cell types including proliferative cells and stem cells, progenitors, cellular entities of the absorptive lineage, Enterocytes and Microfold-like cells. Cells of the secretory lineage were also annotated, but without distinct canonical gene expression patterns. With the organotypical polarisation, protein expression, structural features and the heterogeneous cell composition including the rare Microfold-like cells, the biological scaffold-based tissue model of the intestinal epithelium demonstrates key requisites needed for infection studies with Salmonella.
In a second part of this study, a suitable infection protocol of the epithelial tissue model with Salmonella Typhimurium was established, followed by the examination of key features of the infection process. Salmonella adhered to the epithelial microvilli and induced typical membrane ruffling during invasion; interestingly the individual steps of invasion could be observed. After invasion, time course analysis showed that Salmonella resided and proliferated intracellularly, while simultaneously migrating from the apical to the basolateral side of the infected cell. Furthermore, the bacterial morphology changed to a filamentous phenotype; especially when the models have been analysed at late time points after infection. The epithelial cells on the other side released the cytokines Interleukin 8 and Tumour Necrosis Factor α upon bacterial infection in a time-dependent manner. Taken together, Salmonella infection of the intestinal epithelial tissue model recapitulates important steps of the infection process as described in the literature, and hence demonstrates a valid in vitro platform for the investigation of the Salmonella infection process in the human context.
During the infection process, intracellular Salmonella populations varied in their bacterial number, which could be attributed to increased intracellular proliferation and demonstrated thereby a heterogeneous behaviour of Salmonella in individual cells. Furthermore, by the application of single cell transcriptomic profiling, the upregulation of Olfactomedin-4 (OLFM4) gene expression was detected; OLFM4 is a protein involved in various functions including cell immunity as well as proliferating signalling pathways and is often used as intestinal stem cell marker. This OLFM4 upregulation was time-dependent, restricted to Salmonella infected cells and seemed to increase with bacterial mass. Investigating the OLFM4 regulatory mechanism, nuclear factor κB induced upregulation could be excluded, whereas inhibition of the Notch signalling led to a decrease of OLFM4 gene and protein expression. Furthermore, Notch inhibition resulted in decreased filamentous Salmonella formation. Taken together, by the use of the introduced primary epithelial tissue model, a heterogeneous intracellular bacterial behaviour was observed and a so far overlooked host cell response – the expression of OLFM4 by individual infected cells – could be identified; although Salmonella Typhimurium is one of the best-studied enteric pathogenic bacteria. This proves the applicability of the introduced tissue model in enteric infection research as well as the importance of new approaches in order to decipher host-pathogen interactions with higher relevance to the host.
The small intestine represents a strong barrier separating the lumen from blood circulation thereby playing a major role in the absorption and the transport of pharmacological agents prior to their arrival on the respective target site. In order to gain more knowledge about specialized uptake mechanisms and risk assessment for the patient after oral admission of drugs, intestinal in vitro models demonstrating a close similarity to the in vivo situation are needed.
In the past, cell line-based in vitro models composed of Caco-2 cells cultured on synthetic cell carriers represented the “gold standard” in the field of intestinal tissue engineering. Expressive advantages of these models are a reproducible, cost-efficient and standardized model set up, but cell function can be negatively influenced by the low porosity or unwanted molecular adhesion effects of the artificial scaffold material. Natural extracellular matrices (ECM) such as the porcine decellularized small intestinal submucosa (SIS) are used as alternative to overcome some common drawbacks; however, the fabrication of these scaffolds is time- and cost-intensive, less well standardized and the 3Rs (replacement, reduction, refinement) principle is not entirely fulfilled. Nowadays, biopolymer-based scaffolds such as the bacterial nanocellulose (BNC) suggest an interesting option of novel intestinal tissue engineered models, as the BNC shows comparable features to the native ECM regarding fiber arrangement and hydrophilic properties. Furthermore, the BNC is of non-animal origin and the manufacturing process is faster as well as well standardized at low costs.
In this context, the first part of this thesis analyzed the BNC as alternative scaffold to derive standardized and functional organ models in vitro. Therefore, Caco-2 cells were cultured on two versions of BNC with respect to their surface topography, the unmodified BNC as rather smooth surface and the surface-structured BNC presenting an aligned fiber arrangement. As controls, Caco-2 in vitro models were set up on PET and SIS matrices. In this study, the BNC-based models demonstrated organ-specific properties comprising typical cellular morphologies, a characteristic tight junction protein expression profile, representative ultrastructural features and the formation of a tight epithelial barrier together with a corresponding transport activity. In summary, these results validated the high quality of the BNC-based Caco-2 models under cost-efficient conditions and their suitability for pre-clinical research purposes. However, the full functional diversity of the human intestine cannot be presented by Caco-2 cells due to their tumorigenic background and their exclusive representation of mature enterocytes.
Next to the scaffold used for the setup of in vitro models, the cellular unit mainly drives functional performance, which demonstrates the crucial importance of mimicking the cellular diversity of the small intestine in vitro. In this context, intestinal primary organoids are of high interest, as they show a close similarity to the native epithelium regarding their cellular diversity comprising enterocytes, goblet cells, enteroendocrine cells, paneth cells, transit amplifying cells and stem cells. In general, such primary organoids grow in a 3D Matrigel® based environment and a medium formulation supplemented with a variety of growth factors to maintain stemness, to inhibit differentiation and to stimulate cell migration supporting long term in vitro culture.
Intestinal primary spheroid/organoid cultures were set up as Transwell®-like models on both BNC variants, which resulted in a fragmentary cell layer and thereby unfavorable properties of these scaffold materials under the applied circumstances. As the BNC manufacturing process is highly flexible, surface properties could be adapted in future studies to enable a good cell adherence and barrier formation for primary intestinal cells, too. However, the application of these organoid cultures in pre-clinical research represents an enormous challenge, as the in vitro culture is complex and additionally time- and cost-intensive.
With regard to the high potential of primary intestinal spheroids/organoids and the necessity of a simplified but predictive model in pre-clinical research purposes, the second part of this thesis addressed the establishment of a primary-derived immortalized intestinal cell line, which enables a standardized and cost-efficient culture (including in 2D), while maintaining the cellular diversity of the organoid in vitro cultures. In this study, immortalization of murine and human intestinal primary organoids was induced by ectopic expression of a 10- (murine) or 12 component (human) pool of genes regulating stemness and the cell cycle, which was performed in cooperation with the InSCREENeX GmbH in a 2D- and 3D-based transduction strategy. In first line, the established cell lines (cell clones) were investigated for their cell culture prerequisites to grow under simplified and cost-efficient conditions. While murine cell clones grew on uncoated plastic in a medium formulation supplemented with EGF, Noggin, Y-27632 and 10% FCS, the human cell clones demonstrated the necessity of a Col I pre coating together with the need for a medium composition commonly used for primary human spheroid/organoid cultures. Furthermore, the preceding analyses resulted in only one human cell clone and three murine cell clones for ongoing characterization. Studies regarding the proliferative properties and the specific gene as well as protein expression profile of the remaining cell clones have shown, that it is likely that transient amplifying cells (TACs) were immortalized instead of the differentiated cell types localized in primary organoids, as 2D, 3D or Transwell®-based cultures resulted in slightly different gene expression profiles and in a dramatically reduced mRNA transcript level for the analyzed marker genes representative for the differentiated cell types of the native epithelium. Further, 3D cultures demonstrated the formation of spheroid-like structures; however without forming organoid-like structures due to prolonged culture, indicating that these cell populations have lost their ability to differentiate into specific intestinal cell types. The Transwell®-based models set up of each clone exhibit organ-specific properties comprising an epithelial-like morphology, a characteristic protein expression profile with an apical mucus-layer covering the villin-1 positive cell layer, thereby representing goblet cells and enterocytes, together with representative tight junction complexes indicating an integer epithelial barrier. The proof of a functional as well as tight epithelial barrier in TEER measurements and in vivo-like transport activities qualified the established cell clones as alternative cell sources for tissue engineered models representing the small intestine to some extent. Additionally, the easy handling and cell expansion under more cost-efficient conditions compared to primary organoid cultures favors the use of these newly generated cell clones in bioavailability studies.
Altogether, this work demonstrated new components, structural and cellular, for the establishment of alternative in vitro models of the small intestinal epithelium, which could be used in pre-clinical screenings for reproducible drug delivery studies.
Chondrozyten stellen die zelluläre Komponente von hyalinem Knorpel dar, der die Gelenkflächen diarthrotischer Gelenke bedeckt. Über die perizelluläre Matrix (PZM) sind sie mit der extrazellulären Matrix des Knorpelgewebes, die im Wesentlichen aus Wasser, Kollagen-Typ-II (Koll-II) und Glykosaminoglykan (GAG) gebildet wird, verbunden. Die PZM gilt als wichtiges modulatorisches und protektives Element in der Signal- und Mechanotransduktion sowie für die Homöostase innerhalb des Knorpelgewebes. Degenerative und inflammatorische Prozesse führen zu irreparablen Schäden der Gewebearchitektur und -funktionalität. Die Regenerative Medizin strebt den Ersatz destruierter Gelenkflächen durch mittels Tissue Engineering hergestellten Neoknorpel an. 3D-Bioprinting gilt hier als attraktive Methode, nimmt jedoch über Scherkräfte während des Druckvorgangs auch schädigenden Einfluss auf das Überleben oder die Funktionalität der Zellen.
Zielsetzung dieser Arbeit war es, den möglichen protektiven Einfluss der PZM während des Druckvorgangs zu untersuchen. Aus porcinem Frischknorpel isolierte Chondrozyten wurden nach cast bzw. 3D-Bioprinting in Agarose-Biotinte hinsichtlich ihres Überlebens und ihrer Syntheseleistung von knorpelspezifischem Koll-II und GAG untersucht. Chondrozyten ohne PZM wurden mit Chondrozyten verglichen, die nach enzymatischer Isolation noch perizellulär Kollagen-Typ-VI als Marker der PZM aufwiesen. Chondrozyten mit PZM zeigten allgemein eine stärkere Produktion von Koll-II als Chondrozyten ohne PZM. Nach 3D-Bioprinting konnte für Chondrozyten ohne PZM eine signifikant geringere Produktion von GAG nachgewiesen werden als in der cast-Vergleichsgruppe, während dies für Chondrozyten mit PZM nicht gezeigt werden konnte.
Der gezeigte protektive Einfluss der PZM gegenüber Scherkräften während des Druckvorgangs eröffnet neue Methoden für das Cartilage Tissue Engineering. Weitere Untersuchungen sind notwendig, um dies zu bestätigen und die Translation in die klinische Forschung ermöglichen.
Additive manufacturing processes such as 3D printing are booming in the industry due to their high degree of freedom in terms of geometric shapes and available materials. Focusing on patient-specific medicine, 3D printing has also proven useful in the Life Sciences, where it exploits the shape fidelity for individualized tissues in the field of bioprinting. In parallel, the current systems of bioreactor technology have adapted to the new manufacturing technology as well and 3D-printed bioreactors are increasingly being developed. For the first time, this work combines the manufacturing of the tissue and a tailored bioreactor, significantly streamlining the overall process and optimally merging the two processes. This way the production of the tissues can be individualized by customizing the reactor to the tissue and the patient-specific wound geometry. For this reason, a common basis and guideline for the cross-device and cross-material use of 3D printers was created initially. Their applicability was demonstrated by the iterative development of a perfusable bioreactor system, made from polydimethylsiloxane (PDMS) and a lignin-based filament, into which a biological tissue of flexible shape can be bioprinted. Cost-effective bioink-replacements and in silico computational fluid dynamics simulations were used for material sustainability and shape development. Also, nutrient distribution and shear stress could be predicted in this way pre-experimentally.
As a proof of functionality and adaptability of the reactor, tissues made from a nanocellulose-based Cellink® Bioink, as well as an alginate-based ink mixed with Me-PMeOx100-b-PnPrOzi100-EIP (POx) (Alginate-POx bioink) were successfully cultured dynamically in the bioreactor together with C2C12 cell line. Tissue maturation was further demonstrated using hMSC which were successfully induced to adipocyte differentiation. For further standardization, a mobile electrical device for automated media exchange was developed, improving handling in the laboratory and thus reduces the probability of contamination.
Lungenkrebs ist weltweit für die meisten krebsassoziierten Tode verantwortlich. Ursache dafür ist unter anderem, dass viele Medikamente in der klinischen Anwendung, aufgrund nicht übertragbarer Ergebnisse aus der Präklinik, scheitern. Zur Entwicklung neuer Therapiestrategien werden deshalb Modelle benötigt, welche die in vivo Situation besser widerspiegeln. Besonders wichtig ist es dabei, zu zeigen, für welche Fragestellungen ein neues Testsystem valide Ergebnisse liefert.
In dieser Arbeit ist es mit Hilfe des Tissue Engineering gelungen, ein humanes 3D in vitro Lungentumor-Testsystem weiter zu entwickeln und für verschiedene Fragestellungen zu validieren. Zudem konnten sowohl für die Herstellung als auch für die Behandlung der Tumormodelle SOPs etabliert werden. Hier wurde zunächst beobachtet, dass die Auswerteparameter für die Beurteilung von Behandlungseffekten eine geringe Varianz aufweisen und das 3D Modell deshalb als Testsystem geeignet ist.
Ein Vergleich der Morphologie, des EMT-Status und der Differenzierung der Tumorzelllinien im 3D Modell mit Tumorbiopsaten von Adenokarzinompatienten verdeutlichte, dass die 3D Modelle tumorrelevante Merkmale besitzen. So sind die Zelllinien auf der biologischen Matrix, verglichen mit der jeweiligen 2D Kultur, durch eine reduzierte Proliferationsrate gekennzeichnet, welche eher der in vivo Situation entspricht. Für die Etablierung und Validierung des 3D Modells als Testsystem war es notwendig, klinisch relevante Therapien in dem Modell anzuwenden und die Ergebnisse der Behandlung in vitro mit denen im Patienten zu vergleichen. Dabei konnte zunächst bestätigt werden, dass eine zielgerichtete Therapie gegen den EGFR in dem 3D System zu einer verstärkten Induktion der Apoptose im Vergleich zu 2D führt. Dies entspricht klinischen Beobachtungen, bei denen EGFR-mutierte Patienten gut auf eine Therapie mit Tyrosin-Kinase-Inhibitoren (TKI) ansprechen. Anschließend wurde in dieser Arbeit erstmals in vitro gezeigt, dass die Behandlung mit einem HSP90-Inhibitor bei KRAS-Mutation wie in behandelten Patienten keine eindeutigen Vorteile bringt, diese jedoch in Experimenten der 2D Zellkultur mit den entsprechenden Zelllinien vorhergesagt werden. Die Ergebnisse aus dem in vitro Modell spiegeln damit verschiedene klinische Studien wider und unterstreichen das Potenzial des 3D Lungentumor-Testsystems die Wirkung zielgerichteter Therapien vorherzusagen. Durch die Messung von Signalwegsaktivierungen über Phospho-Arrays und Western Blot konnten in dieser Arbeit Unterschiede zwischen 2D und 3D nach Behandlung gezeigt werden. Diese lieferten die Grundlage für bioinformatische Vorhersagen für Medikamente.
Mit fortschreitender Erkrankung und dem Entstehen invasiver Tumore, die möglicherweise Metastasen bilden, verschlechtert sich die Prognose von Krebspatienten. Zudem entwickeln Patienten, die zunächst auf eine Therapie mit TKI ansprechen, bereits nach kurzer Zeit Resistenzen, die ebenfalls zur Progression des Tumorwachstums führen. Zur Wirkungsuntersuchung von Substanzen in solchen fortgeschrittenen Erkrankungsstadien wurde das bestehende Testsystem erweitert. Zum einen wurde mit Hilfe des Wachstumsfaktors TGF-β1 eine EMT ausgelöst. Hier konnte beobachtet werden, dass sich die Expression verschiedener EMT- und invasionsassoziierter Gene und Proteine veränderte und die Zellen vor allem in dynamischer Kultur verstärkt die Basalmembran der Matrix überquerten. Zum anderen wurde die Ausbildung von Resistenzen gegenüber TKI durch die Generierung von resistenten Subpopulationen aus einer ursprünglich sensitiven Zelllinie und anschließender Kultivierung auf der Matrix abgebildet. Dabei zeigte sich keine der klinisch bekannten Mutationen als ursächlich für die Resistenz, sodass weitere Mechanismen untersucht wurden. Hier konnten Veränderungen in der Signaltransduktion sowie der Expression EMT-assoziierter Proteine festgestellt werden.
Im letzten Teil der Arbeit wurde eine neuartige Behandlung im Bereich der Immuntherapie erfolgreich in dem 3D Modell angewendet. Dafür wurden T-Zellen, die einen chimären Antigen-Rezeptor (CAR) gegen ROR1 tragen, in statischer und dynamischer Kultur zu den Tumorzellen gegeben und der Therapieeffekt mittels histologischer Färbung und der Bestimmung der Apoptose evaluiert. Zusätzlich konnten Eigenschaften der T-Zellen, wie deren Proliferation sowie Zytokinausschüttung quantifiziert und damit eine spezifische Wirkung der CAR transduzierten T-Zellen gegenüber Kontroll-T-Zellen nachgewiesen werden.
Zusammenfassend ist es in dieser Arbeit gelungen, ein humanes 3D Lungentumor-Testsystem für die Anwendung in der präklinischen Entwicklung von Krebsmedikamenten sowie der Grundlagenforschung im Bereich der Tumorbiologie zu etablieren. Dieses Testsystem ist in der Lage relevante Daten zu Biomarker-geleiteten Therapien, zur Behandlung fortgeschrittener Tumorstadien und zur Verbesserung neuartiger Therapiestrategien zu liefern.
Ruptures of the anterior cruciate ligament (ACL) and defects of the rotator cuff represent the most common ligament and tendon injuries in knee and shoulder. Both injuries represent significant implications for the patients. After an injury, the ACL and the rotator cuff both exhibit poor intrinsic healing capacities. In order to prevent further defects such as arthritis of the knee and fatty infiltration of the rotator cuff, surgical interaction is essential. In both cases, the currently used surgical techniques are far from optimal because even after the therapy many patients report problems ranging from pain and reduced mobility to complete dysfunction of the involved joint and muscles. Tissue engineering may be a possible solution. It is a promising field of regenerative medicine and might be an advantageous alternative for the treatment of musculoskeletal injuries and diseases in the near future. In this thesis, different tissue engineering based approaches were investigated. For the reconstruction of damaged or diseased ligaments and tendons, the use of MSCs and gene therapy with growth factors is especially suitable and possesses a great therapeutic potential. Therefore, the first method studied and tested in this thesis was the development of a biomaterial based construct for the repair of a ruptured ACL. The second approach represents a cell based strategy for the treatment of the fatty infiltration in the rotator cuff. The third approach was a combined cell, biomaterial, and growth factor based strategy for ACL ruptures. Biomaterial based ACL construct The implant is currently tested in a preclinical in vivo study in mini pigs. This proof-of-principle study is performed to validate the functional capability of the collagen fiber based implant under load in vivo and its population with fibroblasts which produce a ligamentogenic matrix. Cell based treatment of the fatty infiltration in the rotator cuff Regarding the treatment of the fatty infiltration of the rotator cuff in a rabbit model, the in vivo results are also promising. The group treated with autologous MSCs (+MSC group) showed a lower fat content than the untreated group (–MSC group) 6 weeks after the treatment. Furthermore, the SSP muscle of the MSC-treated animals revealed macroscopically and microscopically only few differences compared to the healthy control group. The exact underlying mechanisms leading to the positive results of the treatment are not yet fully understood and have therefore to be further investigated in the future. Cell, biomaterial, and growth factor based treatment of ACL ruptures Studies described in current literature show that collagen hydrogel scaffolds are not ideal for a complete ligament or tendon reconstruction, because of their insufficient mechanical stability. Introduced as an alternative and superior therapy, the combined strategy used in this thesis proves that the cultivation of BMP-12, -13, and IGF-1 transduced MSCs and ACL fibroblasts in a collagen hydrogel is successful. The results of the performed in vitro study reveal that the cells exhibit a fibroblastic appearance and produce a ligamentogenic matrix after 3 weeks. Furthermore, the adenoviral transduction of MSCs and ACL fibroblasts showed no negative effects on proliferation or viability of the cells nor was apoptosis caused. Therefore, the application of these cells represents a possible future therapy for a partial ligament and tendon rupture where the mechanical stability of the remaining ligament or tendon is sufficient and the healing can be improved substantially by this therapy. In general, prospective randomized clinical trials still have to prove the postulated positive effect of MSCs for the treatment of various musculoskeletal diseases, but the results obtained here are already very promising. Ideally, the treatment with MSCs is superior compared to the standard surgical procedures. Because of current safety issues the use of genetically modified cells cannot be expected to be applied clinically in the near future. In summary, the different tissue engineering approaches for novel therapies for musculoskeletal injuries and diseases invested in this thesis showed very promising results and will be further developed and tested in preclinical and clinical trials.
Chondrogenic differentiation of human mesenchymal stem cells and articular cartilage reconstruction
(2008)
Articular cartilage defects are still one of the major challenges in orthopedic and trauma surgery. Today, autologous chondrocyte transplantation (ACT), as a cell-based therapy, is an established procedure. However, one major limitation of this technique is the loss of the chondrogenic phenotype during expansion. Human mesenchymal stem cells (hMSCs) have an extensive proliferation potential and the capacity to differentiate into chondrocytes when maintained under specific conditions. They are therefore considered as candidate cells for tissue engineering approaches of functional cartilage tissue substitutes. First in this study, hMSCs were embedded in a collagen type I hydrogel to evaluate the cartilaginous construct in vitro. HMSC collagen hydrogels cultivated in different culture media showed always a marked contraction, most pronounced in chondrogenic differentiation medium supplemented with TGF-ß1. After stimulation with chondrogenic factors (dexamethasone and TGF-ß1) hMSCs were able to undergo chondrogenesis when embedded in the collagen type I hydrogel, as evaluated by the temporal induction of cartilage-specific gene expression. Furthermore, the cells showed a chondrocyte-like appearance and were homogeneously distributed within a proteoglycan- and collagen type II-rich extracellular matrix, except a small area in the center of the constructs. In this study, chondrogenic differentiation could not be realized with every hMSC preparation. With the improvement of the culture conditions, e.g. the use of a different FBS lot in the gel fabrication process, a higher amount of cartilage-specific matrix deposition could be achieved. Nevertheless, the large variations in the differentiation capacity display the high donor-to-donor variability influencing the development of a cartilaginous construct. Taken together, the results demonstrate that the collagen type I hydrogel is a suitable carrier matrix for hMSC-based cartilage regeneration therapies which present a promising future alternative to ACT. Second, to further improve the quality of tissue-engineered cartilaginous constructs, mechanical stimulation in specific bioreactor systems are often employed. In this study, the effects of mechanical loading on hMSC differentiation have been examined. HMSC collagen hydrogels were cultured in a defined chondrogenic differentiation medium without TGF-ß1 and subjected to a combined mechanical stimulation protocol, consisting of perfusion and cyclic uniaxial compression. Bioreactor cultivation neither affected overall cell viability nor the cell number in collagen hydrogels. Compared with non-loaded controls, mechanical loading promoted the gene expression of COMP and biglycan and induced an up-regulation of matrix metalloproteinase 3. These results circumstantiate that hMSCs are sensitive to mechanical forces, but their differentiation to chondrocytes could not be induced. Further studies are needed to identify the specific metabolic pathways which are altered by mechanical stimulation. Third, for the development of new cell-based therapies for articular cartilage repair, a reliable cell monitoring technique is required to track the cells in vivo non-invasively and repeatedly. This study aimed at analyzing systematically the performance and biological impact of a simple and efficient labeling protocol for hMSCs. Very small superparamagnetic iron oxide particles (VSOPs) were used as magnetic resonance (MR) contrast agent. Iron uptake was confirmed histologically with prussian blue staining and quantified by mass spectrometry. Compared with unlabeled cells, VSOP-labeling did neither influence significantly the viability nor the proliferation potential of hMSCs. Furthermore, iron incorporation did not affect the differentiation capacity of hMSCs. The efficiency of the labeling protocol was assessed with high resolution MR imaging at 11.7 Tesla. VSOP-labeled hMSCs were visualized in a collagen type I hydrogel indicated by distinct hypointense spots in the MR images, resulting from an iron specific loss of signal intensity. This was confirmed by prussian blue staining. In summary, this labeling technique has great potential to visualize hMSCs and track their migration after transplantation for articular cartilage repair with MR imaging.
Die Epithelzellen des renalen proximalen Tubulus resorbieren große Mengen an Wasser, Glucose und weiteren wertvollen Substanzen aus dem Primärharn, um deren Ausscheidung zu verhindern. Weiterhin sekretieren sie harnpflichtige Substanzen in den Primärharn und sind in der Lage, in die Zelle aufgenommene Substanzen enzymatisch umzusetzen. Diese Funktionen machen den renalen proximalen Tubulus zu einer wichtigen Einheit für die Nie-renfunktion. Sie führen aber auch zu einer hohen Empfindlichkeit gegenüber toxischen Effek-ten von Fremdstoffen. Daher ist ein In-vitro-Modell des renalen proximalen Tubulusepithels sowohl für die Erforschung physiologischer und pathologischer Mechanismen als auch zur Testung der Toxizität von Substanzen, insbesondere neuen Arzneimitteln, bedeutend. Ein weiteres Forschungsfeld, für das ein In-vitro-Gewebe von großem Nutzen wäre, ist die Ent-wicklung von bioartifiziellen Nierenersatzsystemen. Aufgrund Spezies-spezifischer Unterschiede, z.B. in der Expression von Transportproteinen und Enzymen, ist ein Modell mit humanen Zellen anzustreben. Bisher besteht jedoch ein Mangel an Modellen, die das renale proximale Tubulusepithel für die oben genannten An-wendungsbereiche adäquat abbilden. Das Ziel dieser Arbeit war deshalb der Aufbau eines humanen In-vitro-Modells des renalen proximalen Tubulus unter Verwendung von humanen Nierenzellen (human kidney-derived cells, hKDCs), die Eigenschaften renaler Vorläuferzellen aufweisen. In Kombination mit die-sen Zellen wurden verschiedene Kultursubstrate getestet. Dabei zeigte sich, dass die Zellen sowohl in Zellkulturplatten als auch auf Kollagen-Typ-I-beschichteten Insertmembranen mehrschichtig wachsen, ohne die typische Morphologie renaler proximaler Tubuluszellen auszubilden. In einem dreidimensionalen Kollagen-Typ-I-Hydrogel bildeten die hKDCs hin-gegen tubuläre bzw. zystäre Strukturen mit einer kubischen bis hochprismatischen Morpho-logie. Da für die oben erwähnten Anwendungsbereiche jedoch eine planare Zellschicht benö-tigt wird, erfolgte die Testung weiterer biologischer Matrices. Diese waren die Small intestinal submucosa (SIS) und das Biological vascularized scaffold (BioVaSc). Beide ließen sich aus porcinem Dünndarm herstellen, wobei bei der SIS die Mucosa sowie das Mesenterium ent-fernt wurden. Bei der BioVaSc handelt es sich um ein Darmsegment mit erhaltenem Ge-fäßsystem, dass zur Perfusion genutzt wird. Nach ihrer Kultur auf der SIS wiesen die hKDCs das typische Wachstum und die charakteris-tische Morphologie des renalen proximalen Tubulusepithels auf. Dazu gehören die Kontakt-hemmung, die das einschichtige Wachstum ermöglicht, die kubisch bis hochprismatische Morphologie sowie die Bildung eines Bürstensaums an der apikalen Zellmembran. Anhand einer Kollagen-Typ-IV- und einer Alcianblau-Färbung ließ sich die Bildung einer Basalmemb-ran an der Grenze zur SIS nachweisen. Bürstensaum- und Basalmembranbildung zeigten die zelluläre Polarisierung. Weiterhin waren typische Markerproteine renaler proximaler Tu-buluszellen wie N-Cadherin und Aquaporin-1 immunhistochemisch, zum Teil deutlich stärker als bei den Ausgangszellen, nachweisbar. Dies belegt einen positiven Einfluss der extrazellu-lären Matrixkomponenten der SIS auf die Ausbildung von Charakteristika des renalen proxi-malen Tubulusepithels. Die Albuminaufnahme als spezifische Funktion war ebenfalls nach-weisbar. Die molekularen Veränderungen der hKDCs während der Kultivierung auf der SIS ließen sich weiterhin mittels Raman-Spektroskopie bestätigen. Aufgrund der starken Interak-tion zwischen Tubulusepithel und umgebenden Kapillarnetzwerk wurde weiterhin die Co-Kultur mit Endothelzellen etabliert. Für den Vergleich der hKDCs mit einer etablierten humanen Zelllinie renaler proximaler Tu-buluszellen wurde die HK-2-Zelllinie verwendet. Mit dieser Zelllinie ließen sich die Ergebnisse der hKDCs jedoch nicht reproduzieren, was auf die fehlende Sensitivität der transformierten Zelllinie auf die Substrateigenschaften zurückzuführen ist. In der dynamischen Kultur mit der BioVaSc als Matrix waren ein inhomogenes Wachstum sowie eine variierende Markerexpression zu beobachten. Die ließ sich vor allem auf den starken Einfluss der Aussaatdichte sowie die Festigkeit der Matrix zurückführen. Bei einer erfolgreichen Optimierung der Kultur kann dieses Modell jedoch für komplexere Studien in der pharmakologischen Entwicklung nützlich sein. Mit der Kombination aus hKDCs und SIS ist es gelungen, eine einzelne, durchgängige Zell-schicht zu generieren, die wichtige Charakteristika des renalen proximalen Tubulusepithels aufweist. Weitere Untersuchungen sind nun nötig, um die Funktionalität des Modells weiter-gehend zu charakterisieren (z.B. der Transport von Substanzen und Sensitivität gegenüber toxischen Substanzen). Anschließend kann es für die spezifischen Anwendungen weiterentwickelt werden.
This thesis encompasses the development of the additive manufacturing technology melt electrowriting, in order to achieve the improved applicability in biomedical applications and design of scaffolds. Melt electrowriting is a process capable of producing highly resolved structures from microscale fibres. Nevertheless, there are parameters influencing the process and it has not been clear how they affect the printing result. In this thesis the influence of the processing and environmental parameters is investigated with the impact on their effect on the jet speed, fibre diameter and scaffold morphology, which has not been reported in the literature to date and significantly influences the printing quality. It was demonstrated that at higher ambient printing temperatures the fibres can be hampered to the extent that the individual fibres are completely molten together and increased air humidity intensifies this effect. It was also shown how such parameters as applied voltage, collector distance, feed pressure and polymer temperature influence the fibre diameter and critical translation speed. Based on these results, a detailed investigation of the fibre diameter control and printing of scaffolds with novel architectures was made. As an example, a 20-fold diameter ratio is obtained within one scaffold by changing the collector speed and the feed pressure during the printing process. Although the pressure change caused fibre diameter oscillations, different diameter fibres were successfully integrated into two scaffold designs, which were tested for mesenchymal stromal cell suspension and adipose tissue spheroid seeding. Further design and manufacturing aspects are discussed while jet attraction to the printed structures is illuminated in connection with the fibre positioning control of the multilayer scaffolds. The artefacts that appear with the increasing scaffold height of sinusoidal laydown patterns are counteracted by layer-by-layer path adjustment. For the prediction of a printing error of the first deposited layer, an algorithm is developed, that utilizes an empirical jet lag equation and the speed of fibre deposition. This model was able to predict the position of the printing fibre with up to ten times smaller error than the of the programmed path. The same model allows to qualitatively assess the fibre diameter change along the nonlinear pattern as well as to indicate the areas of the greatest pattern deformation with the growing scaffold height. Those results will be used in the later chapters for printing of the novel MEW structures for biomedical applications. In the final chapter the concept of multimodal scaffold was combined with the suspended fibre printing, for the manufacturing of the MEW scaffolds with controlled pore interconnectivity in three dimensions. Those scaffolds were proven to be a promising substate for the control of the neurite spreading of the chick DRG neurons.
Electrochemical impedance spectroscopy (EIS) is a valuable technique analyzing electrochemical behavior of biological systems such as electrical characterization of cells and biomolecules, drug screening, and biomaterials in biomedical field. In EIS, an alternating current (AC) power signal is applied to the biological system, and the impedance of the system is measured over a range of frequencies.
In vitro culture models of endothelial or epithelial barrier tissue can be achieved by culturing barrier tissue on scaffolds made with synthetic or biological materials that provide separate compartments (apical and basal sides), allowing for further studies on drug transport. EIS is a great candidate for non-invasive and real-time monitoring of the electrical properties that correlate with barrier integrity during the tissue modeling. Although commercially available transendothelial/transepithelial electrical resistance (TEER) measurement devices are widely used, their use is particularly common in static transwell culture. EIS is considered more suitable than TEER measurement devices in bioreactor cultures that involve dynamic fluid flow to obtain accurate and reliable measurements. Furthermore, while TEER measurement devices can only assess resistance at a single frequency, EIS measurements can capture both resistance and capacitance properties of cells, providing additional information about the cellular barrier's characteristics across various frequencies. Incorporating EIS into a bioreactor system requires the careful optimization of electrode integration within the bioreactor setup and measurement parameters to ensure accurate EIS measurements. Since bioreactors vary in size and design depending on the purpose of the study, most studies have reported using an electrode system specifically designed for a particular bioreactor. The aim of this work was to produce multi-applicable electrodes and established methods for automated non-invasive and real-time monitoring using the EIS technique in bioreactor cultures. Key to the electrode material, titanium nitride (TiN) coating was fabricated on different substrates (materials and shape) using physical vapor deposition (PVD) and housed in a polydimethylsiloxane (PDMS) structure to allow the electrodes to function as independent units. Various electrode designs were evaluated for double-layer capacitance and morphology using EIS and scanning electron microscopy (SEM), respectively. The TiN-coated tube electrode was identified as the optimal choice. Furthermore, EIS measurements were performed to examine the impact of influential parameters related to culture conditions on the TiN-coated electrode system. In order to demonstrate the versatility of the electrodes, these electrodes were then integrated into in different types of perfusion bioreactors for monitoring barrier cells. Blood-brain barrier (BBB) cells were cultured in the newly developed dynamic flow bioreactor, while human umblical vascular endothelial cells (HUVECs) and Caco-2 cells were cultured in the miniature hollow fiber bioreactor (HFBR). As a result, the TiN-coated tube electrode system enabled investigation of BBB barrier integrity in long-term bioreactor culture. While EIS measurement could not detect HUVECs electrical properties in miniature HFBR culture, there was the possibility of measuring the barrier integrity of Caco-2 cells, indicating potential usefulness for evaluating their barrier function. Following the bioreactor cultures, the application of the TiN-coated tube electrode was expanded to hemofiltration, based on the hypothesis that the EIS system may be used to monitor clotting or clogging phenomena in hemofiltration. The findings suggest that the EIS monitoring system can track changes in ion concentration of blood before and after hemofiltration in real-time, which may serve as an indicator of clogging of filter membranes. Overall, our research demonstrates the potential of TiN-coated tube electrodes for sensitive and versatile non-invasive monitoring in bioreactor cultures and medical devices.
Als Therapie des Diabetes mellitus Typ II stellt die Xenotransplantation von porzinen Langerhans-Inseln in mikroverkapselter Form eine attraktive Alternative zu den täglichen Insulininjektionen dar. Kultivierung und Funktionsdiagnostik der isolierten porzinen Langerhans-Inseln sind technisch anspruchsvoll und bieten noch immer Potential für Verbesserungen. Werden die Zellen in Zellkulturflaschen über mehrere Tage kultiviert, sinkt die Vitalität unter ein akzeptables Niveau. Bei der Beurteilung der Vitalität und Funktion der Inseln gehen wertvolle Zellen für eine spätere Transplantation verloren. Dies schränkt eine ausgiebige Diagnostik vor der Transplantation ein. Ziel der Arbeit ist es, eine Möglichkeit zur Verbesserung der Kulturbedingungen zu finden und exakte Ergebnisse bei der Funktions- und Vitalitätsdiagnostik ohne Verlust von Zellen zu erreichen. Vorversuche konnten beweisen, dass eine Verbesserung der Vitalität von Langerhans-Inseln in Kultur an der Methode der Kultivierung in Zellkulturflaschen scheitert. Stattdessen wurde das Prinzip der Perfusionskultur in spezialisierten Behältnissen für die systematische Verbesserung der Kulturbedingungen und zur genaueren Diagnostik mittels Mikroskopie und Funktionsdiagnostik gewählt. Mit einem solchen System ist sowohl Kultivierung als auch Funktions- und Vitalitätsdiagnostik in einem Behälter möglich. Beim Prinzip der Perfusionskultur befindet sich das Medium stets in Bewegung um die Zellen und Gewebe und sorgt so für einen kontinuierlichen Zustrom exakt definierten Mediums und permanenten Abtransport der Stoffwechselprodukte. Im Rahmen dieser Arbeit wurde für die Anforderungen im eigenen Labor ein maßgeschneidertes System mit mehreren Versionen von Behältnissen für Perfusionskulturen entwickelt, deren jeweils neuere Version auf den Erfahrungen mit den Vorversionen aufbaut. In die Entwicklung fließen ebenso umfangreiche theoretische Überlegungen ein, sowie systematische Tests zu den physikalischen Eigenschaften der Behältnisse. Die zuletzt entwickelte ist die Version V6SMTE, die in der Arbeit „Würzburger Kammer“ genannt wird. Dieser Behälter ist aus Edelstahl, mit einem Deckglas zur makro- und mikroskopischen Begutachtung, Zu- und Abläufen und einem Anschluss zum Entfernen von Gasblasen. Im Inneren befindet sich ein Einsatz, der eine stufenlose Regulierung des Volumens um die Zellen ermöglicht, so dass für Kultur und Funktionsprüfung bzw. Mikroskopie jeweils optimale Bedingungen erreicht werden. Weiterhin kann über einen Temperatursensor die Temperatur im Inneren des Behälters gemessen und über Heizelemente an der Außenwand computergesteuert reguliert werden. Die Zellen und Gewebe können auf unterschiedlichen Trägermaterialien eingesetzt werden. Während der Kultur kann ein Deckel geöffnet und die Zellen manipuliert werden. Das System ist unabhängig vom Brutschrank, ist sterilisierbar und wieder verwendbar. Kultiviert wurde endokrines Gewebe (isolierte Langerhans-Inseln, humanes Nebenschilddrüsengewebe). Dieses wurde zur Funktionsprüfung mit verschiedenen Mediatoren stimuliert, das Medium fraktioniert aufgefangen und sein Hormongehalt mit ELISA oder RIA bestimmt. Die Zellen wurden nativ und mit Fluoreszenzfarbstoffen (FDA, PI) gefärbt mit bis zu 400facher Vergrößerung unter dem Auflichtmikroskop beurteilt. Im Zuge der Auswertung der anfallenden Proben auf ihren Insulingehalt wurde für diese Arbeit ein Insulin-ELISA entwickelt, der bei vergleichbarer Genauigkeit deutlich günstiger ist, als der bisher verwendete kommerzielle ELISA. Mit der Würzburger Kammer kultivierte Langerhans-Inseln zeigten eine vergleichbare Vitalität im Vergleich zur Zellkulturflasche, die mit der Würzburger Kammer gewonnenen Perifusionskurven sind in hohem Maß reproduzierbar, Zusammenhänge von Höhe der Glukoseexposition und Kultivierungsdauer mit der Insulinausschüttungskurve konnten eindrucksvoll beschrieben werden. Erstmals wurde auch im eigenen Labor die aus der Literatur bekannte paradoxe Insulinausschüttung beschrieben. Beispielhaft für andere endokrine Gewebe wurde humanes Nebenschilddrüsengewebe erfolgreich in der Würzburger Kammer kultiviert und Vitalitäts- und Funktionsdiagnostik unterzogen. Das Kultursystem ermöglicht die Kultivierung und eine komplette Analyse von Funktion, Vitalität und Morphologie von endokrinen Zellen. Es kann somit in idealer Weise zur Verbesserung der Kulturbedingungen und zur Beurteilung von endokrinen Zellen vor der Transplantation herangezogen werden.
Aktueller Goldstandard bei der Rekonstruktion des ACL des Menschen sind au-tologe Transplantate. Diese sind allerdings je nach Entnahmeort mit einer mehr oder weniger hohen Entnahmemorbidität und dem Risiko für Folgeerkrankungen verbunden. Um dies zu umgehen, wurde ein xenogenes Kollagenimplantat aus
Kollagen-I-Fasern von Ratten entwickelt und das native Konstrukt bereits in einer Vorläuferstudie getestet.
Im Rahmen dieser Arbeit wurden diese Kreuzbandkonstrukte mit Hilfe diverser
Crosslinker modifiziert und hinsichtlich ihrer Biomechanik, Biokompatibilität und ihres in-vivo Verhaltens untersucht.
Bewusst wurde dabei auf die Zellbesiedlung dieser Konstrukte verzichtet, da un-ter Berücksichtigung wirtschaftlicher Gesichtspunkte eines späteren humanen
Einsatzes hierfür eine Arzneimittelzulassung notwendig gewesen wäre. Mit Hilfe der Crosslinker wurde versucht, die mechanische Stabilität sowie die Resistenz gegen kollagenabbauende Enzyme der Synovia zu erhöhen, um die Gefahr post-operativer Instabilitäten zu verringern. Dabei sollten Fragen bezüglich Immun-antwort, Biokompatibilität sowie Biodegradierbarkeit genau berücksichtigt wer-den. Als Crosslinker wurden für einen Vergleich in vitro neben 0,5 % Genipin auch 10 % HMDI sowie Glukose und EDC/NHS herangezogen.
Dabei zeigten die Genipin-gecrosslinkten Einzelfasern die größte Reißfestigkeits-zunahme, wohingegen auf Minikonstruktbasis 10 % HMDI zu den höchsten UTS-Werten führte. Ebenso ließen sich bezüglich der Biokompatibilutät in vitro bei den Crosslinkern 0,5 % Genipin und 10 % HMDI Vorteile gegenüber den beiden an-deren erkennen.
Schließlich erfolgte im Rahmen eines Tierversuchs an 16 Minipigs der Einbau von 0,5 % Genipin-gecrosslinkten Konstrukten als Kreuzbandersatz und an-schließend die biomechanische Testung sowie nach Paraffineinbettung auch eine durchlichtmikrokopische deskriptive Auswertung der Transplantate.
Während nach 6 Wochen eine deutliche Reißfestigkeitsabnahme zu verzeichnen war, erreichte diese nach 6 Monaten wieder fast 60 % ihrer ursprünglichen UTS.
Somit konnte ein Remodeling des eingesetzten Implantats angenommen wer-den. Dies bestätigte sich in der durchgeführten histologischen Untersuchung.
Hier war das Implantat deutlich vaskularisiert, von zahlreichen Fibroblasten durchsetzt und wies eine synoviale Deckschicht auf. Allerdings scheint vor allem wegen der Schwäche der Konstrukte nach 6 Wochen sowie den vermutlich auf-grund des Crosslinkers auftretenden Reaktionserscheinungen innerhalb des
Kniegelenks ein Einsatz im humanen Bereich zum gegenwärtigen Zeitpunkt noch nicht ausgereift.
Dennoch lässt sich gerade anhand des stattfindenden Remodelings das große Potential kollagenbasierter Materialien für den Kreuzbandersatz erkennen. Eine weitere Optimierung des bestehenden Konstrukts sollte deshalb forciert werden.