Abteilung für Funktionswerkstoffe der Medizin und der Zahnheilkunde
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- Medizinische Klinik und Poliklinik II (1)
- Rudolf-Virchow-Zentrum (1)
Sonstige beteiligte Institutionen
Augmenting the vascular supply to generate new tissues, a crucial aspect in regenerative medicine, has been challenging. Recently, our group showed that calcium phosphate can induce the formation of a functional neo-angiosome without the need for microsurgical arterial anastomosis. This was a preclinical proof of concept for biomaterial-induced luminal sprouting of large-diameter vessels. In this study, we investigated if sprouting was a general response to surgical injury or placement of an inorganic construct around the vessel. Cylindrical biocement scaffolds of differing chemistries were placed around the femoral vein. A contrast agent was used to visualize vessel ingrowth into the scaffolds. Cell populations in the scaffold were mapped using immunohistochemistry. Calcium phosphate scaffolds induced 2.7–3 times greater volume of blood vessels than calcium sulphate or magnesium phosphate scaffolds. Macrophage and vSMC populations were identified that changed spatially and temporally within the scaffold during implantation. NLRP3 inflammasome activation peaked at weeks 2 and 4 and then declined; however, IL-1β expression was sustained over the course of the experiment. IL-8, a promoter of angiogenesis, was also detected, and together, these responses suggest a role of sterile inflammation. Unexpectedly, the effect was distinct from an injury response as a result of surgical placement and also was not simply a foreign body reaction as a result of placing a rigid bioceramic next to a vein, since, while the materials tested had similar microstructures, only the calcium phosphates tested elicited an angiogenic response. This finding then reveals a potential path towards a new strategy for creating better pro-regenerative biomaterials.
Was vor einigen Jahren undenkbar erschien, könnte zukünftig möglich sein: Krankes Gewebe mit Gesundem ersetzen, das in vitro mit modernsten Biofabrikationstechniken hergestellt wird. Dabei werden bisherige Grenzen überschritten: Während lichtbasierte Biodruckverfahren wie die Zwei-Photonen-Polymerisation Auflösungen bis in den Nanometerbereich erzielen, ermöglicht der Volumetrische Biodruck (VB) den Druck zentimetergroßer Konstrukte in wenigen Sekunden. Diese Geschwindigkeiten erweisen sich unter Biodruckverfahren als konkurrenzlos und werden erreicht, da das Bioharz nicht konsekutiv, sondern zugleich vernetzt wird. Einschränkend gilt bislang nur der Mangel an geeigneten Bioharzen für den VB. Daher beschäftigt sich vorliegende Arbeit mit der Charakterisierung und Modifikation eines dafür geeigneten Bioharzes: Gelatine-Methacrylat (GelMA). Dank seiner Zusammensetzung ähnelt das etablierte Hydrogelsystem der Extratrazellularmatrix: Der Gelatine-Anteil ermöglicht Biokompatibilität und Bioaktivität durch zelladhäsive sowie degradierbare Aminosäure-Sequenzen. Zugleich können durch photovernetzbare Methacryloyl-Substituenten Konstrukte mit einer Formstabilität bei 37 °C erzeugt werden.
Zunächst wurde das Bioharz zellbiologisch charakterisiert, indem mit der embryonalen Mausfibroblasten-Zelllinie NIH-3T3 beladene GelMA-Zylinder gegossen, photopolymerisiert und kultiviert wurden. Im Verlauf einer Woche wurde die Zytokompatibilität der Gele anhand der Proliferationsfähigkeit (PicoGreen-Assay), des Metabolismus (CCK-8-Assay) und der Vitalität (Live/Dead-Assay) der Zellen beurteilt. Dabei wurden Polymerkonzentrationen von 6 – 8 % sowie GelMA-Harze zweier verschiedener Molekulargewichte verglichen. Alle hergestellten Gele erwiesen sich als zytokompatibel, 6 % ige Gele ließen im Inneren jedoch zusätzlich eine beginnende Zellspreizung zu und ein niedriges GelMA-Molekulargewicht verstärkte die gemessene Proliferation. Die sich anschließende mechanische und physikalische Charakterisierung belegte, dass höher konzentrierte Gele einen größeren E-Modul aufwiesen und damit steifer waren. Eine Modifikation der Gele mit Fibronektin beeinflusste die Zellverträglichkeit weder positiv noch negativ und die Zugabe von Kollagen war wegen Entmischungseffekten nicht bewertbar. Es liegt die Vermutung nah, dass eine weitere Reduktion der Polymerkonzentration und damit Verringerung der Gelsteifigkeit der Schlüssel für mehr Zellspreizung und -wachstum ist. Da jedoch die Druckbarkeit des Bioharzes die weitere Senkung des GelMA-Gehalts limitiert, sollten zunächst Methoden entwickelt werden, welche die Netzwerkdichte des GelMAs anderweitig herabsetzen.
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.
Das Ziel der experimentellen Studie war die Erprobung der (bereits in vitro erfolgreich getesteten) Ca(OH)2-Beschichtung In vivo unter dem Aspekt, ob und inwieweit die antibakteriellen und somit auch antiinflammatorischen bzw. entzündungsmoderierenden Eigenschaften der Ca(OH)2-Beschichtung eine sinnvolle und effektive Ergänzung zu den bisher erfolgreich eingesetzten Calciumphosphat(CaP)-Beschichtungen mit bewiesenen, guten proosseointegrativen Eigenschaften bei lasttragenden Implantaten sein können.
Zusammenfassend kann festgestellt werden, dass die Ergebnisse der In vitro Untersuchung durch die In vivo Versuche in den Bereichen 0-100 KBE grundsätzlich als gestützt gelten können. Die Zuverlässigkeit der Wirkung durch Ca(OH)2 nimmt jedoch mit steigender KBE-Zahl ab, sodass weitere Testreihen sinnvoll sind.
Im Rahmen dieser Arbeit sollte herausgefunden werden, inwiefern Calciumorthophosphatzemente (CPC) dafür geeignet sind, um als Prüfkörper zur Qualifizierung von Knochenklebern zu dienen, und worin ihre Limitationen bestehen. Dazu sollte nicht nur ein materieller Vergleich verschiedener hydroxylapatitbildender Zemente mit Knochen erfolgen. Es sollte auch das Adhäsionsverhalten neuartiger Knochenkleber auf den verschiedenen Prüfkörpermaterialien verglichen werden, um mögliche Rückschlüsse für die Eignung als standardisierbares in-vitro Prüfkörpermaterial ziehen zu können.
Gegenstand der Untersuchung war ein α-Tricalciumphosphat (α-TCP)-System und ein Tetracalciumphosphat (TTCP)-System welche im Rahmen einer Zement-Abbindereaktion calciumdefizitären Hydroxylapatit (CDHA) bzw. stöchiometrischen Hydroxylapatit (HA) bilden. Die Materialien wurden dazu verwendet Prüfkörperteile in Form von Zylindern (5 x 5 mm) und Plättchen (20 x 10 x 5 mm) herzustellen, die dann mit verschiedenen Knochenklebern verklebt werden konnten. Der stärkste der verwendeten Kleber war ein Cyanoacrylat-Kleber (Truglue®). Er erzielte auf Prüfkörpern aus Knochen nach 24-stündiger Lagerung in PBS mittlere Abscherfestigkeiten von ca. 4,22 ± 1,92 MPa. Als zweitstärkster Kleber erwies sich ein neuartiger zementbasierter Kleber, der aus wärmebehandeltem Trimagnesiumphosphat-Hydrat und Phosphoserin bestand. Dieser Kleber erzielte unter den gleichen Umständen mittlere Abscherfestigkeiten von ca. 1,89 ± 0,29 MPa. Etwas schwächer schnitt ein ebenfalls neuartiger zementbasierter Kleber ab, der aus dem Magnesiumphosphat Farringtonit, sowie aus Magnesiumoxid und 25 % Phytinsäure bestand. Dieser Kleber erzielte mittlere Abscherfestigkeiten von ca. 0,51 ± 0,16 MPa. Insgesamt haben die Untersuchungen gezeigt, dass die in-vitro Qualifizierung von Knochenklebern unter Verwendung von Prüfkörpern aus Zement möglich wäre. Die Prüfkörper aus CDHA vereinten die meisten Vorteile und wären für Klebesysteme mit Abscherfestigkeiten von bis zu 2 MPa geeignet. Dabei erzeugten die Knochenkleber auf CDHA zwar abweichende Abscherfestigkeiten als auf Knochen, doch ließ sich ein vergleichbarer Trend bei stets reduzierten Varianzen erkennen. Durch die gute Konsistenz der Zementpaste war die Herstellung homogener Prüfkörper möglich. Aufgrund der Stabilität von CDHA unter wässrigen Bedingungen konnten Langzeitversuche ohne Einschränkungen vorgenommen werden. Die Limitationen der Prüfkörper aus CDHA bestanden allerdings darin, dass sie nicht für Abscherversuche von stärkeren Klebern geeignet waren. In solchen Fällen versagten die Prüfkörper noch bevor die maximale Abscherfestigkeit des jeweiligen Klebers gemessen werden konnte.
The human body has very good self-healing capabilities for numerous different injuries to a variety of different tissues. This includes the main human mechanical framework, the skeleton. The skeleton is limited in its healing without additional aid by medicine mostly by the defect size. When the defect reaches a size above 2.5 cm the regeneration of the defect ends up faulty. Here is where implants, defect fillers and other support approaches developed in medicine can help the body to heal the big defect still successfully.
Usually sturdy implants (auto-/allo-/xenogenic) are implanted in the defect to bridge the distance, but for auto- and allogenic implants a suitable donor site must be found and for all sources the implant needs to be shaped into the defect specific site to ensure a perfect fit, the best support and good healing. This shaping is very time consuming and prone to error, already in the planning phase. The use of a material that is moldable and sets in the desired shape shortly after applying negates these disadvantages. Cementitious materials offer exactly this property by being in a pasty stage after the powder and liquid components have been mixed and the subsequently hardening to a solid implant. These properties also enable the extrusion, and therefore may also enable the injection, of the cement via a syringe in a minimal invasive approach.
To enable a good injection of the cement modifications are necessary. This work aimed to modify commonly used calcium phosphate-based cement systems based on α-TCP (apatitic) and β-TCP (brushitic). These have been modified with sodium phytate and phytic acid, respectively. Additionally, the α-TCP system has been modified with sodium pyrophosphate, in a second study, to create a storable aqueous paste that can be activated once needed with a highly concentrated sodium orthophosphate solution.
The powder phase of the α-TCP cement system consisted of nine parts α-TCP and one part CDHA. These were prepared to have different particle sizes and therefore enable a better powder flowability through the bimodal size distribution. α-TCP had a main particle size of 20 μm and CDHA of 2.6 μm. The modification with sodium phytate led to an adsorption of phytate ions on the surface of the α-TCP particles, where they started to form complexes with the Ca2+ ions in the solution. This adsorption had two effects. The first was to make the calcium ions unavailable, preventing supersaturation and ultimately the precipitation of CDHA what would lead to the cement hardening. The second was the increase of the absolute value of the surface charge, zeta potential, of the powder in the cement paste. Here a decrease from +3 mV to -40 mV could be measured. A strong value for the zeta potential leads to a higher repulsion of similarly charged particles and therefore prevents powder agglomeration and clogging on the nozzle during injection. These two modifications (bimodal particles size distribution and phytic acid) lead to a significant increase in the paste injectability. The unmodified paste was injectable for 30 % only, where all modified pastes were practically fully injectable ~90 % (the residual paste remained in the nozzle, while the syringe plunger already reached the end of the syringe).
A very similar observation could be made for the β-TCP system. This system was modified with phytic acid. The zeta potential was decreased even stronger from -10 ± 1.5 mV to -71.5 ± 12 mV. The adsorption of the phytate ions and subsequent formation of chelate complexes with the newly dissolved Ca2+ ions also showed a retarding effect in the cements setting reaction. Where the unmodified cement was not measurable in the rheometer, as the reaction was faster than the measurement setup (~1.5 min), the modified cements showed a transition through the gel point between 3-6 min. This means the pastes stayed between 2 and 4 times longer viscous than without the modification. Like with the first cement system also here the effects of the phytate addition showed its beneficial influence in the injectability measurement. The unmodified cement was not injectable at all, due to the same issue already encountered at the rheology measurements, but all modified pastes were fully injectable for at least 5 min (lowest phytate concentration) and at least 10 min (all other concentrations) after the mixing of powder and liquid.
The main goal of the last modification with sodium pyrophosphate was to create a paste that was stable in aqueous environment without setting until the activation takes place, but it should still show good injectability as this was the desired way of application after activation. Like before also the zeta potential changed after the addition of pyrophosphate. It could be lowered from -22 ± 2mV down to -61 to -68 ± 4mV (depending on the pyrophosphate concentration). The pastes were stored in airtight containers at room temperature and checked for their phase composition over 14 days. The unmodified paste showed a beginning phase conversion to hydroxyapatite between 7 and 14 days. All other pastes were still stable and unreacted. The pastes were activated with a high concentrated (30 wt%) sodium orthophosphate solution. After the activation the pastes were checked for their injectability and showed an increase from -57 ± 11% for the unmodified paste to -89 ± 3% (practically fully injectable as described earlier) for the best modified paste (PP005).
It can be concluded that the goal of enabling full injection of conventional calcium phosphate bone cement systems was reached. Additional work produced a storage stable paste that still ensures full injectability. Subsequent work already used the storable paste and modified it with hyaluronic acid to create an ink for 3D extrusion printing. The first two cement systems have also already been investigated in cell culture for their influence on osteoblasts and osteoclasts. The next steps would have to go more into the direction of translation. Figuring out what properties still need to be checked and where the modification needs adjustment to enable a clinical use of the presented systems.
Heutige chirurgische Situationen können zeitweise den Einsatz eines Knochenkleber erfordern, welcher sich jedoch noch nicht in der klinischen Praxis etablieren konnte. In jüngster Vergangenheit haben mit Phosphoserin modifizierte Zemente (PMC) auf der Grundlage von Verbindungen zwischen o-Phosphoserin (OPLS) und Calciumphosphaten wie Tetracalciumphosphat (TTCP) oder α-Tricalciumphosphat (α-TCP) an Popularität gewonnen. Ebenso bekommen chelatbildende Magnesiumphosphatzemente als mineralische Knochenadhäsive mehr Zuspruch. In dieser Arbeit wurden neue mineralorganische Knochenzemente auf der Basis von Phosphoserin und Magnesiumphosphaten oder -oxiden untersucht, die hervorragende Hafteigenschaften besitzen. Diese wurden mittels Röntgenbeugung, Fourier-Infrarot-Spektroskopie und Elektronenmikroskopie analysiert und mechanischen Tests unterzogen, um die Haftfestigkeit am Knochen nach Alterung unter physiologischen Bedingungen zu bestimmen. Die neuartigen biomineralischen Klebstoffe zeigen eine ausgezeichnete Haftfestigkeit an Knochen mit etwa 6,6-7,3 MPa unter Scherbelastung. Die Adhäsive sind auch aufgrund ihres kohäsiven Versagensmusters und ihres duktilen Charakters vielversprechend. In diesem Zusammenhang sind die neuen adhäsiven Zemente den derzeit vorherrschenden Knochenadhäsiven überlegen. Ergänzend wurde versucht, dieses neue System mit unterschiedlichen Additiven zu modifizieren. Dabei wurde Mannit erfolgreich als Porogen verwendet. Dreiarmiges sternförmiges NCO-sP(EO-stat-PO) sollte die adhäsiven Eigenschaften und das Leistungspotenzial unter Wasser verbessern. Zuletzt wurden mit Glycerol präfabrizierte Pasten hergestellt, welche gelagert werden können und bei Kontakt mit Wasser aushärten. Generell ist zu betonen, dass künftige Bemühungen um Knochenklebstoffe aus Phosphoserin und Mg2+ sehr lohnenswert erscheinen.
Zelluläre Resorption 3D-gedruckter Knochenimplantate auf Basis von Calciummagnesiumphosphaten
(2023)
Für die Behandlung von Knochendefekten kritischer Größe gibt es heute eine Reihe von Therapiemöglichkeiten. Neuartige Ansätze mit Magnesiumphosphat- (MPC) und Calciummagnesiumphosphatzementen (CMPC) haben sich als echte Alternativen zu den etablierten Calciumphosphaten erwiesen.
Ziel war es, die Osteoklastogenese in vitro auf 3D-pulvergedrucktem CMPC und MPC zu induzieren und die zelluläre Resorption (zR) zu analysieren. Polystyrol (PS), Glas, β-TCP und Brushit-bildender Zement dienten als Referenzen.
Als Proben wurden Zemente der allgemeinen stöchiometrischen Summenformel CaxMg(3–x)(PO4)2 (x = 0; 0,25; 0,75; 3) verwendet, die Struvit oder Newberyit enthielten. Für die Osteoklastogenese wurden monozytenangereicherte PBMCs aus Buffy-Coat mittels dreifacher Dichtegradientenzentrifugation isoliert, auf die Prüfoberflächen ausgesät und über einen Zeitraum von 22 Tagen mit Zytokinen (M-CSF und RANKL) stimuliert. Die Interaktion der Zellen mit den Zementen bzw. PS/Glas wurde mittels TRAP-Färbung und -Aktivität, DNA- und Ionenkonzentrationen (Ca2+, Mg2+, PO43–, pH-Wert), Rasterelektronen-, Durchlicht-, Auflicht- und Fluoreszenzmikroskopie analysiert.
Auf den Struvit- und Newberyit-bildenden Zementen konnten keine für Osteoklasten typischen Riesenzellen nachgewiesen werden. Auf den Struvit-bildenden Zementen wurde deutlich mehr mononukleäre Zellen nachgewiesen wurden als auf den Newberyit-bildenden Zementen. Während die Freisetzung von Mg2+ und PO43– ausschließlich durch die chemische Degradation erfolgte, wurde Ca2+ zunächst adsorbiert und anschließend durch zR freigesetzt. Die erhöhte Ca2+-Adsorption im Vergleich zur Ca2+-Resorption führte insgesamt zu einer Calcium-Präzipitation.
Da lediglich auf β-TCP Resorptionslakunen beobachtet wurden, wird angenommen, dass auf den CMPC, MPC und Brushite-bildenden Zementen die zellvermittelte Ca2+-Freisetzung von den Präzipitaten ausging, die von Makrophagen auf den Zementen und/oder Riesenzellen auf den Wellplatten resorbiert wurden.
3D neuronal cultures attempt to better replicate the in vivo environment to study neurological/neurodegenerative diseases compared to 2D models. A challenge to establish 3D neuron culture models is the low elastic modulus (30–500 Pa) of the native brain. Here, an ultra-soft matrix based on thiolated hyaluronic acid (HA-SH) reinforced with a microfiber frame is formulated and used. Hyaluronic acid represents an essential component of the brain extracellular matrix (ECM). Box-shaped frames with a microfiber spacing of 200 µm composed of 10-layers of poly(ɛ-caprolactone) (PCL) microfibers (9.7 ± 0.2 µm) made via melt electrowriting (MEW) are used to reinforce the HA-SH matrix which has an elastic modulus of 95 Pa. The neuronal viability is low in pure HA-SH matrix, however, when astrocytes are pre-seeded below this reinforced construct, they significantly support neuronal survival, network formation quantified by neurite length, and neuronal firing shown by Ca\(^{2+}\) imaging. The astrocyte-seeded HA-SH matrix is able to match the neuronal viability to the level of Matrigel, a gold standard matrix for neuronal culture for over two decades. Thus, this 3D MEW frame reinforced HA-SH composite with neurons and astrocytes constitutes a reliable and reproducible system to further study brain diseases.
Polymeric Janus Fibers
(2023)
Janus fibers are a class of composite materials comprising mechanical and chemical to biological functionality. Combining different materials and functionalities in one micro- or even nanoscale fiber enables otherwise unreachable synergistic physicochemical effects with unprecedented opportunities for technical or biomedical applications. Here, recent developments of processing technologies and applications of polymeric Janus fibers will be reviewed. Various examples in the fields of textiles, catalysis, sensors as well as medical applications, like drug delivery systems, tissue engineering and antimicrobial materials, are presented to illuminate the outstanding potential of such high-end functional materials for novel applications in the upcoming future.