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- Department of Cellular Biochemistry, University Medical Center Göttingen (1)
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- Fraunhofer-Institut für Silicatforschung (ISC) in Würzburg (1)
- Max Planck Institute for Biophysical Chemistry, Department of Molecular Biology, Göttingen (1)
- Max Planck Institute for Biophysical Chemistry, Research Group Structure and Function of Molecular Machines, Göttingen (1)
- Max-Planck Institute for Biophysical Chemistry, Department of Molecular Biology, Göttingen (1)
- University Medical Center Göttingen, Department of Cellular Biochemistry, Göttingen (1)
The implantation of any foreign material into the body automatically starts an immune reaction that serves as the first, mandatory step to regenerate tissue. The course of this initial immune reaction decides on the fate of the implant: either the biomaterial will be integrated into the host tissue to subsequently fulfill its intended function (e.g., tissue regeneration), or it will be repelled by fibrous encapsulation that determines the implant failure. Especially neutrophils and macrophages play major roles during this inflammatory response and hence mainly decide on the biomaterial's fate. For clinically relevant tissue engineering approaches, biomaterials may be designed in shape and morphology as well as in their surface functionality to improve the healing outcome, but also to trigger stem cell responses during the subsequent tissue regeneration phase.
The main focus of this thesis was to unravel the influence of scaffold characteristics, including scaffold morphology and surface functionality, on primary human innate immune cells (neutrophils and macrophages) and human mesenchymal stromal cells (hMSCs) to assess their in vitro immune response and tissue regeneration capacity, respectively. The fiber-based constructs were produced either via melt electrowriting (MEW), when the precise control over scaffold morphology was required, or via solution electrospinning (ES), when the scaffold design could be neglected. All the fiber-based scaffolds used throughout this thesis were composed of the polymer poly(ε caprolactone) (PCL).
A novel strategy to model and alleviate the first direct cell contact of the immune system with a peptide-bioactived fibrous material was presented in chapter 3 by treating the material with human neutrophil elastase (HNE) to imitate the neutrophil attack. The main focus of this study was put on the effect of HNE towards an RGDS-based peptide that was immobilized on the surface of a fibrous material to improve subsequent L929 cell adhesion. The elastase efficiently degraded the peptide-functionality, as evidenced by a decreased L929 cell adhesion, since the peptide integrated a specific HNE-cleavage site (AAPV-motif). A sacrificial hydrogel coating based on primary oxidized hyaluronic acid (proxHA), which dissolved within a few days after the neutrophil attack, provided an optimal protection of the peptide-bioactivated fibrous mesh, i.e, the hydrogel alleviated the neutrophil attack and largely ensured the biomaterial's integrity. Thus, according to these results, a means to protect the biomaterial is required to overcome the neutrophil attack.
Chapter 4 was based on the advancement of melt electrowriting (MEW) to improve the printing resolution of MEW scaffolds in terms of minimal inter-fiber distances and a concomitant high stacking precision. Initially, to gain a better MEW understanding, the influence of several parameters, including spinneret diameter, applied pressure, and collector velocity on mechanical properties, crystallinity, fiber diameter and fiber surface morphology was analyzed. Afterward, innovative MEW designs (e.g., box-, triangle-, round , and wall-shaped scaffolds) have been established by pushing the printing parameters to their physical limits. Further, the inter-fiber distance within a standardized box-structured scaffold was successfully reduced to 40 µm, while simultaneously a high stacking precision was maintained. In collaboration with a co-worker of my department (Tina Tylek, who performed all cell-based experiments in this study), these novel MEW scaffolds have been proven to facilitate human monocyte-derived macrophage polarization towards the regenerative M2 type in an elongation-driven manner with a more pronounced effect with decreasing pore sizes.
Finally, a pro-adipogenic platform for hMSCs was developed in chapter 5 using MEW scaffolds with immobilized, complex ECM proteins (e.g., human decellularized adipose tissue (DAT), laminin (LN), and fibronectin (FN)) to test for the adipogenic differentiation potential in vitro. Within this thesis, a special short-term adipogenic induction regime enabled to more thoroughly assess the intrinsic pro-adipogenic capacity of the composite biomaterials and prevented any possible masking by the commonly used long-term application of adipogenic differentiation reagents. The scaffolds with incorporated DAT consistently showed the highest adipogenic outcome and hence provided an adipo-inductive microenvironment for hMSCs, which holds great promise for applications in soft tissue regeneration.
Future studies should combine all three addressed projects in a more in vivo-related manner, comprising a co-cultivation setup of neutrophils, macrophages, and MSCs. The MEW-scaffold, particularly due to its ability to combine surface functionality and adjustable morphology, has been proven to be a successful approach for wound healing and paves the way for subsequent tissue regeneration.
Product identification tags are of great importance in a globalized world with increasingly complex trading routes and networks. Beyond currently used coding strategies, such as QR codes, higher data density, flexible application as well as miniaturization and readout indication are longed for in the next generation of security tags. In this work, micron‐sized supraparticles (SPs) with encoded information (ID) are produced that not only exhibit multiple initially covert identification levels but are also irreversibly marked as “read” upon readout. To achieve this, lanthanide doped CaF\(_{2}\) nanoparticles are assembled in various quantity‐weighted ratios via spray‐drying in presence of a broad‐spectrum stealth fluorophore (StFl), yielding covert spectrally encoded ID‐SPs. Using these as pigments, QR codes, initially dominated by the green fluorescence of the StFl, could be generated. Upon thermal energy input, these particle‐based tags irreversibly switch to an activated state revealing not only multiple luminescent colors but also spectral IDs. This strategy provides the next generation of material‐based security tags with a high data density and security level that switch information upon readout and can be, therefore, used as seal of quality.
Thermoresponsive polymers are frequently involved in the development of materials for various applications. Here, polymers containing poly(2- benzhydryl-2-oxazine) (pBhOzi) repeating units are described for the first time. The homopolymer pBhOzi and an ABA type amphiphile comprising two flanking hydrophilic A blocks of poly(2-methyl-2-oxazoline) (pMeOx) and the hydrophobic aromatic pBhOzi central B block (pMeOx-b-pBhOzi-b-pMeOx) are synthesized and the latter is shown to exhibit inverse thermogelling properties at concentrations of 20 wt.% in water. This behavior stands in contrast to a homologue ABA amphiphile consisting of a central poly(2-benzhydryl-2-oxazoline) block (pMeOx-b-pBhOx-b-pMeOx). No inverse thermogelling is observed with this polymer even at 25 wt.%. For 25 wt.% pMeOx-b-pBhOzi-b-pMeOx, a surprisingly high storage modulus of ≈22 kPa and high values for the yield and flow points of 480 Pa and 1.3 kPa are obtained. Exceeding the yield point, pronounced shear thinning is observed. Interestingly, only little difference between self-assemblies of pMeOx-b-pBhOzi-b-pMeOx and pMeOx-b-pBhOx-b-pMeOx is observed by dynamic light scattering while transmission electron microscopy images suggest that the micelles of pMeOx-b-pBhOzi-b-pMeOx interact through their hydrophilic coronas, which is probably decisive for the gel formation. Overall, this study introduces new building blocks for poly(2-oxazoline) and poly(2-oxazine)-based self-assemblies, but additional studies will be needed to unravel the exact mechanism.
Die ersten Beispiele für Lewis-Basen-Addukte des Stammboraphosphaketens H\(_{2}\)B-PCO und ihre cyclischen Dimere wurden hergestellt. Eines dieser Addukte zeigt unter milden Bedingungen eine Decarbonylierung und anschließende Insertion des Phosphinidens in die B-C-Bindung eines Borols, was in der Bildung sehr seltener Beispiele für 1,2-Phosphaborinine, B,P-Isostere von Benzol, resultiert. Die starken Donoreigenschaften dieser 1,2-Phosphaborinine wurden durch die Synthese ihrer π-Komplexe mit Metallen der Gruppe 6 bestätigt.
In 1998, the aminoglycoside antibiotic gentamicin sulfate caused several cases of deaths in the United States, after the switch from twice- to once-daily application. Endotoxins were discussed as the cause for the adverse effects and sisomicin was identified as the lead impurity; batches containing sisomicin were contaminated with more impurities and were responsible for the fatalities. In 2016, anaphylactic reactions in horses, and later in humans with one fatality, were observed after application of gentamicin sulfate contaminated with histamine. To determine whether histamine was responsible for the 1990s death cases as well, histamine was quantified by means of liquid chromatography–tandem mass spectrometry (LC-MS/MS) in 30 samples of gentamicin sulfate analyzed in previous studies. Furthermore, a relative quantification of sisomicin was performed to check for a correlation between histamine and the lead impurity. A maximum amount of 11.52 ppm histamine was detected, which is below the limit for anaphylactic reactions of 16 ppm, and no correlation of the two impurities was observed. However, the European Medicines Agency recommends a stricter limit with regard to the maximum single dose of gentamicin sulfate to reach a greater gap between the maximum histamine exposition of 4.3 µg and the quantity known to cause hypotension of 7 µg. The low amounts of histamine and the fact that there is no connection with the contamination with sisomicin showed that histamine was not the cause for the death cases in the United States in 1998, and endotoxins remain the most probable explanation.
Many (poly‐)phenolic natural products, for example, curcumin and taxifolin, have been studied for their activity against specific hallmarks of neurodegeneration, such as amyloid‐β 42 (Aβ42) aggregation and neuroinflammation. Due to their drawbacks, arising from poor pharmacokinetics, rapid metabolism, and even instability in aqueous medium, the biological activity of azobenzene compounds carrying a pharmacophoric catechol group, which have been designed as bioisoteres of curcumin has been examined. Molecular simulations reveal the ability of these compounds to form a hydrophobic cluster with Aβ42, which adopts different folds, affecting the propensity to populate fibril‐like conformations. Furthermore, the curcumin bioisosteres exceeded the parent compound in activity against Aβ42 aggregation inhibition, glutamate‐induced intracellular oxidative stress in HT22 cells, and neuroinflammation in microglial BV‐2 cells. The most active compound prevented apoptosis of HT22 cells at a concentration of 2.5 μm (83 % cell survival), whereas curcumin only showed very low protection at 10 μm (21 % cell survival).
Catalytic C−X borylation of aryl halides containing two ortho‐fluorines has been found to be challenging, as most previous methods require stoichiometric amounts of base and the polyfluorinated aryl boronates suffer from protodeboronation, which is accelerated by ortho‐fluorine substituents. Herein, we report that a combination of Pd(dba)2 (dba=dibenzylideneacetone) with SPhos (2‐dicyclohexylphosphino‐2’,6’‐dimethoxybiphenyl) as a ligand is efficient to catalyze the C‐Cl borylation of aryl chlorides containing two ortho‐fluorine substituents. This method, conducted under base‐free conditions, is compatible with the resulting di‐ortho‐fluorinated aryl boronate products which are sensitive to base.
Bestimmung der Plasmaproteinbindung von niedrig affinen Liganden am Beispiel der Ephedra-Alkaloide
(2021)
Zur Bestimmung der Bindungsaffinität von Liganden zu den Plasmaproteinen, insbesondere Albumin, wurden über die Jahre zahlreiche Methoden entwickelt. Die Grundlage dieser Arbeit war die Bestimmung der Plasmaproteinbindung der Ephedra-Alkaloide unter Verwendung einzelner dieser etablierten Methoden. Aufgrund ihres Anwendungsgebiets als Notfallmedikation bei Anästhesie-bedingter Hypotonie und den damit verbundenen Anforderungen an die Pharmakokinetik, sollten die Ephedra-Alkaloide niedrig-affine Liganden der Plasmaproteine darstellen. In der Literatur und in vorhergehenden Arbeiten wurden für die Ephedra-Alkaloide jedoch sehr unterschiedliche, teilweise der Indikation widersprechende Affinitäten bestimmt. Daher sollte im Rahmen dieser Arbeit das Ausmaß der Plasmaproteinbindung der Ephedra-Alkaloide weiter untersucht und die Affinität zu Albumin bzw. anderen Plasmaproteinen im humanen Serum bestimmt werden. Neben der Affinität sollte auch die Stereoselektivität der Bindung genauer betrachtet werden, die bei der Bindung vieler Wirkstoffe eine Rolle spielt. Als Referenzmethode diente die kontinuierliche Ultrafiltration, die auch schon bei Hörst verwendet wurde.
Folgende Schlussfolgerungen konnten aus den Ergebnissen dieser Arbeit gezogen werden:
1) Die Ergebnisse der kontinuierlichen Ultrafiltration zeigten, dass die Ephedra-Alkaloide, Ephedrin und Pseudoephedrin, ein nur geringes Ausmaß an Plasmaprotein-bindung von 4 – 9 % gegenüber bovinem und humanem Serumalbumin zeigen. Eine deutlich höhere Plasmaproteinbindung von 19 – 37 % konnte hingegen bei der Verwendung von humanem Serum bestimmt werden. Die Affinität von Pseudoephedrin war dabei jeweils geringer als die von Ephedrin.
2) Diese Ergebnisse mit humanem Serum und die Tatsache, dass Albumin vorwiegend saure Stoffe bindet, legen nahe, dass die Ephedra-Alkaloide vermehrt an andere Plasmaproteine in Serum binden. Erste Messergebnisse mit saurem α1 Glykoprotein bestätigen diese Vermutung.
3) Eine Stereoselektivität konnte nur in geringem Maß bei (+) Ephedrin beobachtet werden, wobei der Unterschied nur im Serum signifikant ist. Pseudoephedrin dagegen zeigte keinerlei Stereoselektivität. Diese Beobachtung passt zu den Schlussfolgerungen der Pfeiffer‘schen Regel zur Stereoselektivität einer Bindung.
4) Andere Sympathomimetika mit einer zusätzlichen Phenolgruppe im Molekül zeigen eine ähnlich niedrige Affinität zu Albumin von ca. 10 %. Eine zusätzliche Phenolgruppe scheint die sauren Eigenschaften des Liganden nicht ausreichend zu erhöhen, um die Affinität zu Albumin signifikant zu steigern.
5) Das tertiäre Kohlenstoffatom am Stickstoff des Ephedrins scheint in gewisser Weise an der Bindung zu Albumin beteiligt zu sein. Sympathomimetika mit einer zusätzlichen Methylgruppe an diesem Kohlenstoffatom, wie Ephedrin, Pseudoephedrin und Oxilofrin, zeigen eine größere Streuung der Messergebnisse. Eine zusätzliche Methylgruppe in dieser Position scheint die Bindung daher sterisch zu hindern.
6) Die Ergebnisse der diskontinuierlichen Ultrafiltration bestätigen weitestgehend die Ergebnisse der kontinuierlichen Ultrafiltration
7) Eine Bestimmung des Ausmaßes der Plasmaproteinbindung von niedrig-affinen Stoffen ist mit den anderen orthogonalen Methoden ACE, NMR und iTC nicht möglich. Diese drei verwendeten Methoden trennen nicht wie die klassischen Methoden den gebundenen vom ungebundenen Wirkstoff, sondern beruhen auf einer Veränderung bestimmter Messparameter: bei der ACE die Migrationszeit, bei der NMR-Spektroskopie die chemische Verschiebung der Signale bzw. der Diffusionskoeffizient und bei der iTC die frei werdende Bindungswärme. Bei allen drei Methoden war die Änderung der Messgröße aufgrund der niedrigen Plasmaproteinbindung zu gering, um auswertbar zu sein.
8) Eine Störgröße bei die orthogonalen Methoden war vielfach auch das Albumin selbst bzw. dessen Eigenschaften. Bei der Affinitäts-Kapillarelektrophorese sind physiologische HSA-Konzentrationen wegen des starken Basislinienrauschens nicht messbar. Zudem bewirkt der Albuminzusatz im Trennpuffer eine Viskositätsänderung, die den EOF verlangsamt und so die Messung stört. Bei der NMR-Spektroskopie können wegen der Überlagerung der Signale durch die breiten Albuminbanden weder Veränderungen in der chemischen Verschiebung noch des Diffusionskoeffizienten zuverlässig bestimmt werden. In der iTC erschwerte die Schaumbildung der Lösung, die durch die Oberflächenaktivität des Albumins verursacht wird, die Messung.
In dieser Arbeit konnte somit das Ausmaß der Plasmaproteinbindung der Ephedra-Alkaloide mit verschiedenen Methoden erfolgreich bestimmt werden. Damit bestätigte diese Arbeit, dass die Ephedra-Alkaloide, wie deren Indikation vermuten lässt, zu den niedrig affinen Liganden des Albumins zählen. Um genauer eingrenzen zu können durch welche Plasmaproteine im Blutserum die Ephedra-Alkaloide transportiert werden, sollten die Untersuchungen zum sauren α1-Glykoprotein fortgesetzt und gegebenenfalls durch weitere Bestimmungen mit anderen Plasmaproteinen ergänzt werden.
Die Ergebnisse dieser Arbeit haben auch gezeigt, dass viele der unzähligen Methoden zur Untersuchung der Plasmaproteinbindung bei der Bestimmung von niedrig affinen Liganden ihre Grenzen haben. Nach wie vor sind zur Bestimmung einer niedrigen Bindungsaffinität weiterhin die klassischen Methoden, wie die kontinuierliche Ultrafiltration, Mittel der Wahl. Nicht zuletzt deshalb erfreuen sich diese Methoden auch heute noch großer Beliebtheit.
The past decades have witnessed the development of new pharmaceutical compounds that modulate receptor function by targeting allosteric sites. Allosteric sites are, by definition, domains topographically distinct from the orthosteric binding pocket where the natural ligand binds. Exploring the possibilities of linking orthosteric and allosteric pharmacophores in one compound to yield ‘bitopic’ compounds is a strategy derived from the “message-address” concept by Schwyzer , first applied to GPCRs by Portoghese et al. This concept explicitly underlines the orthosteric/allosteric combination, in opposite to the more general umbrella term bivalent. The broad possibilities of bitopic ligands in the pharmaceutical field are under continuous study. Bitopic compounds are promising pharmaceutical tools for taking advantage of the allosteric binding to achieve subtype selectivity while preserving high affinity at the receptor. The development of bitopic ligands, based on the idea of combining high affinity (via orthosteric sites) with high selectivity (via allosteric sites), have led to the development of highly selective bivalent ligands for GPCRs , such as for the opioid receptors , muscarinic acetylcholine receptors (mAChRs), serotonin receptors, cannabinoid receptors, and gonadotropin-releasing hormone receptors. This concept has even been extended to other receptors, for examples nicotinic receptors and other proteins, such as acetylcholinesterases and the tyrosine kinase receptors TrkA and TrkC. The reasons to pursue a bitopic ligand approach are various. An improved affinity for the target GPCR and/or an improved selectivity either at the level of receptor subtype, or at the level of signaling pathway. Another advantage of bitopic ligands over purely allosteric ligands is that the former rely on the appropriate presence of endogenous agonist tone to mediate their effects, whereas a bitopic ligand would engage the orthosteric site irrespective of the presence or absence of endogenous tone. By way of introduction to the hybrid approach, a review of the concept of hybrids compounds targeting the cholinergic system is presented in section A of this thesis. Recent updates in hybrid molecule design as a strategy for selectively addressing multiple target proteins involved in Alzheimer's disease (AD) is here reported . This represents the potential and the growing interest in hybrid compound as pharmacological tools to achieve receptor subtype selectivity and/or, to study the overall functional activity of the receptor. Until now, muscarinic acetylcholine receptors (mAChRs) have proved to be a particularly fruitful receptor model for the development and characterization of bitopic ligands. In this thesis, several examples of new muscarinic bitopic approach are reported in the results section. A study of bipharmacophoric ligands composed of the muscarinic positive allosteric modulators (BQCAderived compounds) linked with chain of various lengths to different orthosteric building blocks is reported in the result part 1. Synthesis and examination of the potential pharmacological characteristic of Oxotremorine-BQCAd compounds and Xanomeline-BQCAd hybrid derivatives are described in results parts 2 and 4, respectively. Moreover, the bitopic concept has even been extended to other proteins, such as acetylcholinesterase. In the result part 5 an overview of the new Tacrine-Xanomeline hybrids aiming to improve the inhibitory potency of the acetylcholinesterase and simultaneously to increase the cholinergic tone, via the xanomelinic portion acting on the M1 receptor is given. A new trivalent approach is presented for the first time to deepen the study of the M1 muscarinic receptor in the result part 6. Moreover, the synthesis of a new series of iperoxo-derived alkane, bis(ammonio)alkane-type and rigidified chain ligands is given in the result part 7 together with some prospects for further research.
The most important stereodynamic feature of carbo[n]helicenes is the interconversion of their enantiomers. The Gibbs activation energy (ΔG≠(T)) of this process, which determines the rate of enantiomerization, dictates the configurational stability of [n]helicenes. High values of ΔG≠(T) are required for applications of functional chiral molecules incorporating [n]helicenes or helicene substructures. This minireview provides an overview of the mechanism, recent developments, and factors affecting the enantiomerization of [n]helicenes, which will accelerate the design process of configurationally stable functional chiral molecules based on helicene substructures. Additionally, this minireview addresses the misconception and irregularities in the recent literature on how the terms “racemization” and “enantiomerization” are used as well as how the activation parameters are calculated for [n]helicenes and related compounds.