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Despite medical achievements, the number of patients with end-stage kidney disease keeps steadily raising, thereby entailing a high number of surgical and interventional procedures to establish and maintain arteriovenous vascular access for hemodialysis. Due to vascular disease, aneurysms or infection, the preferred access—an autogenous arteriovenous fistula—is not always available and appropriate. Moreover, when replacing small diameter blood vessels, synthetic vascular grafts possess well-known disadvantages. A continuous multilayered gradient electrospinning was used to produce vascular grafts made of collagen type I nanofibers on luminal and adventitial graft side, and poly-ɛ-caprolactone as medial layer. Therefore, a custom-made electrospinner with robust environmental control was developed. The morphology of electrospun grafts was characterized by scanning electron microscopy and measurement of mechanical properties. Human microvascular endothelial cells were cultured in the graft under static culture conditions and compared to cultures obtained from dynamic continuous flow bioreactors. Immunofluorescent analysis showed that endothelial cells form a continuous luminal layer and functional characteristics were confirmed by uptake of acetylated low-density-lipoprotein. Incorporation of vancomycin and gentamicin to the medial graft layer allowed antimicrobial inhibition without exhibiting an adverse impact on cell viability. Most striking a physiological hemocompatibility was achieved for the multilayered grafts.
While polysulfones constitute a class of well‐established, highly valuable applied materials, knowledge about polymers based on the related sulfoximine group is very limited. We have employed functionalized diaryl sulfoximines and a p ‐phenylene bisborane as building blocks for unprecedented BN‐ and BO‐doped alternating inorganic–organic hybrid copolymers. While the former were accessed by a facile silicon/boron exchange protocol, the synthesis of polymers with main‐chain B–O linkages was achieved by salt elimination.
Cyclodextrins (CDs) are cyclic oligosaccharide structures that could be used for theranostic applications in personalized medicine. These compounds have been widely utilized not only for enhancing drug solubility, stability, and bioavailability but also for controlled and targeted delivery of small molecules. These compounds can be complexed with various biomolecules, such as peptides or proteins, via host-guest interactions. CDs are amphiphilic compounds with water-hating holes and water-absorbing surfaces. Architectures of CDs allow the drawing and preparation of CD-based polymers (CDbPs) with optimal pharmacokinetic and pharmacodynamic properties. These polymers can be cloaked with protein corona consisting of adsorbed plasma or extracellular proteins to improve nanoparticle biodistribution and half-life. Besides, CDs have become famous in applications ranging from biomedicine to environmental sciences. In this review, we emphasize ongoing research in biomedical fields using CD-based centered, pendant, and terminated polymers and their interactions with protein corona for theranostic applications. Overall, a perusal of information concerning this novel approach in biomedicine will help to implement this methodology based on host-guest interaction to improve therapeutic and diagnostic strategies.
Im Rahmen dieser Arbeit wurden Elektronentransferprozesse in Systemen, die auf Triphenylaminredoxzentren basieren, mit Hilfe spektroskopischer und elektrochemischer sowie spektroelektrochemischer Methoden studiert. Im ersten Teil der vorliegenden Arbeit wurden Bistriarylaminsysteme analog zu N,N,N’,N’-Tetra(4-methoxyphenyl)-1,4-phenylendiamin (1) untersucht, deren Radikalkationen eine für gemischtvalente Systeme typische breite und insbesondere bei 1 stark asymmetrische IVCT-Absorptionsbande zeigen. Die Analyse dieser Banden nach Hush sowie einem modifizierten Modell, das der Vibronic coupling-Theorie angelehnt ist, deutet auf die Abnahme der elektronischen Kopplung mit zunehmender Vergrößerung des zentralen Phenylenspacers durch Naphthalin- (2) bzw. Anthracenspacer (3) und damit größerer sterischer Hinderung hin. Gleichzeitig nimmt aber mit der Vergrößerung des -Systems des Spacers auch die Reorganisationsenergie  ab. Insgesamt verhalten sich alle drei Verbindungen sehr ähnlich, was insbesondere das Verhältnis von Absorptionsmaximum der IVCT-Bande zum zweifachen Wert der elektronischen Kopplung betrifft. Legt man vor allem das modifizierte Vibronic coupling-Modell zugrunde, so liegt dieses Verhältnis bei 1+, 2+ und 3+ sehr nahe bei 1, so daß alle drei Systeme sehr nahe am Übergang von Robin-Day-Klasse II zu Klasse III liegen. Weiterhin wurden über einen 1,4-Diethinylphenyl-Spacer verbrückte Bistriarylaminsysteme untersucht, bei denen durch Variation der Spacereinheit (1,4-Diethinylphenyl (5), 1,4-Diethinylnaphthalin (6), 1,4-Diethinyl-2,5-dimethoxyphenyl (10)) die Energie eines Brückenzustandes im Vergleich zu Zuständen, bei denen das Radikal an einem Triarylaminzentrum lokalisiert ist, schrittweise abgesenkt wird. Die auftretenden Elektronentransferprozesse können mit Hilfe eines Dreiniveaumodells mit zwei voneinander unabhängigen Elektronentransferkoordinaten beschrieben werden. Es zeigt sich, daß bei elektronenarmen Spacern, wie z.B. bei 5+, der Elektronentransfer nach einem Superexchange-Mechanismus erfolgt. Bei der Verwendung einer elektronenreichen Dimethoxy-substituierten Brücke wie in 10+ kann der Elektronentransfer neben dem Superexchange- auch nach einem Hopping-Mechanismus erfolgen. Bei Verbindungen, die einen 9,10-Diethinylanthracenspacer (8+ und 9+) enthalten, liegt der Brückenzustand energetisch sogar deutlich tiefer als der Zustand mit einem oxidierten Triphenylaminredoxzentrum. Im zweiten Abschnitt wurden gerichtete Elektronentransferprozesse an Redoxkaskaden und Dendrimeren, die auf Triarylaminredoxzentren basieren, studiert. Die Möglichkeit, die Redoxpotentiale von Triphenylaminzentren durch Substituenten zu beeinflussen, erlaubt die Synthese von Kaskaden mit einem vorgegebenen Redoxgradienten. Innerhalb einer Kaskade, die ein Acridin-Fluorophor, ein 4-Chlor-substituiertes sowie ein 4-Methoxy-substituiertes Triphenylaminredoxzentrum enthält (18), kann nach Anregung des Acridin-Chromophors in polaren Lösungsmitteln ein ladungsgetrennter Zustand erreicht werden, worauf sowohl statische und zeitaufgelöste Fluoreszenzmessungen als auch transientenspektroskopische Untersuchungen hinweisen. Die Lebensdauer kann durch Verlängerung der Redoxkaskade durch ein weiteres Aminzentrum deutlich vergrößert werden. In unpolaren Lösungsmitteln erfolgt dagegen keine Ladungstrennung über die gesamte Kaskade. Ebenso tritt bei 20 (Kaskade aus Acridin, 4 Methoxy-substituiertem Triphenylamin und 4-Chlor-substituiertem Aminzentrum), wo der Redoxgradient entgegen zu 18 gerichtet ist, kein Ladungstransfer auf. Im dritten Teil dieser Arbeit wurden Verbindungen untersucht, die neben 1,4 Phenylendiamineinheiten in para-Position unsubstituierte Triphenylamine enthalten und sich elektrochemisch polymerisieren lassen. Die Eigenschaften der dotierten redoxaktiven Polymere werden durch die enthaltenen p-Phenylendiamin- und Benzidin-Substrukturen dominiert, wofür hauptsächlich die geringe Wechselwirkung der einzelne Redoxzentren untereinander verantwortlich ist. Impedanzspektroskopische Untersuchungen zeigen eine Zunahme der Leitfähigkeit der dotierten Polymerfilme, wobei der Ladungstransfer vermutlich durch Hopping zwischen den p-Phenylendiamin- und Benzidinuntereinheiten erfolgt.
A site specific perturbation of a photo-excited molecular aggregate can lead to a localization of excitonic energy. We investigate this localization dynamics for laser-prepared excited states. Changing the parameters of the electric field significantly influences the exciton localization which offers the possibility for a selective control of this process. This is demonstrated for aggregates possessing a single vibrational degree of freedom per monomer unit. It is shown that the effects identified for the molecular dimer can be generalized to larger aggregates with a high density of vibronic states.
The ongoing transition from fossil to renewable feedstocks demands new efficient processes for an economically viable production of biomass‐derived commodities and fine chemicals. Novel energy‐ and material‐efficient product purification and separation will play a crucial role due to altered product and feed composition. The present study comprises the synthesis and tests of cross‐linked p‐vinylphenylboronate polymers for the separation of 18 diols, sugar alcohols, and saccharides, which can be obtained during biomass processing. The separation was based on molecular recognition, that is, esterification of the phenylboronate with vicinal diols. A correlation of the molecular complexation constant, the polymer swelling, and the maximum adsorption capacity was found. The adsorption curves over time were recorded. Preliminary results on competitive adsorption of binary mixtures showed a high potential for the separation of substrates with significantly different complexation constants. Desorption tests implied easier desorption of substrates that only adsorb on the outer polymer shell.
Organic semiconductors are attractive for optical sensing applications due to the effortless processing on large active area of several \(cm^2\), which is difficult to achieve with solid-state devices. However, compared to silicon photodiodes, sensitivity and dynamic behavior remain a major challenge with organic sensors. Here, we show that charge trapping phenomena deteriorate the bandwidth of organic photodiodes (OPDs) to a few Hz at low-light levels. We demonstrate that, despite the large OPD capacitances of similar to 10 nF \(cm^{-2}\), a frequency response in the kHz regime can be achieved at light levels as low as 20 nW \(cm^{-2}\) by appropriate interface engineering, which corresponds to a 1000-fold increase compared to state-of-the-art OPDs. Such device characteristics indicate that large active area OPDs are suitable for industrial sensing and even match medical requirements for single X-ray pulse detection in the millisecond range.
Detailed insight into the internal structure of drug‐loaded polymeric micelles is scarce, but important for developing optimized delivery systems. We observed that an increase in the curcumin loading of triblock copolymers based on poly(2‐oxazolines) and poly(2‐oxazines) results in poorer dissolution properties. Using solid‐state NMR spectroscopy and complementary tools we propose a loading‐dependent structural model on the molecular level that provides an explanation for these pronounced differences. Changes in the chemical shifts and cross‐peaks in 2D NMR experiments give evidence for the involvement of the hydrophobic polymer block in the curcumin coordination at low loadings, while at higher loadings an increase in the interaction with the hydrophilic polymer blocks is observed. The involvement of the hydrophilic compartment may be critical for ultrahigh‐loaded polymer micelles and can help to rationalize specific polymer modifications to improve the performance of similar drug delivery systems.
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.
Polypeptoids are an old but recently rediscovered polymer class with interesting synthetic, physico-chemical and biological characteristics. Here, we introduce new aromatic monomers, N-benzyl glycine N-carboxyanhydride and N-phenethyl glycine N-carboxyanhydride and their block copolymers with the hydrophilic polysarcosine. We compare their self-assembly in water and aqueous buffer with the self-assembly of amphiphilic block copolypeptoids with aliphatic side chains. The aggregates in water were investigated by dynamic light scattering and electron microscopy. We found a variety of morphologies, which were influenced by the polymer structure as well as by the preparation method. Overall, we found polymersomes, worm-like micelles and oligo-lamellar morphologies as well as some less defined aggregates of interconnected worms and vesicles. Such, this contribution may serve as a starting point for a more detailed investigation of the self-assembly behavior of the rich class of polypeptoids and for a better understanding between the differences in the aggregation behavior of non-uniform polypeptoids and uniform peptoids.
Umsetzungen N-heterocyclischer Carbene mit Boranen führen zur Bildung von „Lewis-Säure-Base-Addukten“. In Abhängigkeit des Substitutionsmusters der eingesetzten Borane bzw. Carbene eignen sich die erhaltenen Addukte als Ausgangsverbindungen zur Realisierung verschiedener Strukturmotive. Mit geeigneten Übergangsmetallfragmenten gelingt die Darstellung von sigma-Boran-Komplexen bzw. Basen-stabilisierter Boryl-Komplexe, welche mittels spektroskopischer Methoden sowohl im Festkörper, als auch in Lösung untersucht wurden. Ebenfalls gelingt die Synthese Basen-stabilisierter Borirane und einer tetraedrischen Borid-Spezies. Zudem wird ein selektiver Zugang zu Basen-stabilisierten Diborenen entwickelt, wobei deren Bindungssituation und Reaktivität im Detail diskutiert wird. So kann das B=B-Fragment in polymere Spezies eingebunden werden oder als Ligand an Übergangsmetalle koordinieren.
Atherosclerotic lesions that critically narrow the artery can necessitate an angioplasty and stent implantation. Long-term therapeutic effects, however, are limited by excessive arterial remodeling. We here employed a miniaturized nitinol-stent coated with star-shaped polyethylenglycole (star-PEG), and evaluated its bio-functionalization with RGD and CXCL1 for improving in-stent stenosis after implantation into carotid arteries of mice. Nitinol foils or stents (bare metal) were coated with star-PEG, and bio-functionalized with RGD, or RGD/CXCL1. Cell adhesion to star-PEG-coated nitinol foils was unaltered or reduced, whereas bio-functionalization with RGD but foremost RGD/CXCL1 increased adhesion of early angiogenic outgrowth cells (EOCs) and endothelial cells but not smooth muscle cells when compared with bare metal foils. Stimulation of cells with RGD/CXCL1 furthermore increased the proliferation of EOCs. In vivo, bio-functionalization with RGD/CXCL1 significantly reduced neointima formation and thrombus formation, and increased re-endothelialization in apoE\(^{-/-}\) carotid arteries compared with bare-metal nitinol stents, star-PEG-coated stents, and stents bio-functionalized with RGD only. Bio-functionalization of star-PEG-coated nitinol-stents with RGD/CXCL1 reduced in-stent neointima formation. By supporting the adhesion and proliferation of endothelial progenitor cells, RGD/CXCL1 coating of stents may help to accelerate endothelial repair after stent implantation, and thus may harbor the potential to limit the complication of in-stent restenosis in clinical approaches.