TY - GEN A1 - Schönemann, Eric A1 - Laschewsky, André A1 - Wischerhoff, Erik A1 - Koc, Julian A1 - Rosenhahn, Axel T1 - Surface modification by polyzwitterions of the sulfabetaine-type, and their resistance to biofouling T2 - Postprints der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe N2 - Films of zwitterionic polymers are increasingly explored for conferring fouling resistance to materials. Yet, the structural diversity of polyzwitterions is rather limited so far, and clear structure-property relationships are missing. Therefore, we synthesized a series of new polyzwitterions combining ammonium and sulfate groups in their betaine moieties, so-called poly(sulfabetaine)s. Their chemical structures were varied systematically, the monomers carrying methacrylate, methacrylamide, or styrene moieties as polymerizable groups. High molar mass homopolymers were obtained by free radical polymerization. Although their solubilities in most solvents were very low, brine and lower fluorinated alcohols were effective solvents in most cases. A set of sulfabetaine copolymers containing about 1 mol % (based on the repeat units) of reactive benzophenone methacrylate was prepared, spin-coated onto solid substrates, and photo-cured. The resistance of these films against the nonspecific adsorption by two model proteins (bovine serum albumin—BSA, fibrinogen) was explored, and directly compared with a set of references. The various polyzwitterions reduced protein adsorption strongly compared to films of poly(n-butyl methacrylate) that were used as a negative control. The poly(sulfabetaine)s showed generally even somewhat higher anti-fouling activity than their poly(sulfobetaine) analogues, though detailed efficacies depended on the individual polymer–protein pairs. Best samples approach the excellent performance of a poly(oligo(ethylene oxide) methacrylate) reference. T3 - Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe - 919 KW - polyzwitterion KW - sulfabetaine KW - sulfobetaine KW - polymer thin films KW - photo crosslinking KW - C,H insertion crosslinking (CHic) KW - protein adsorption KW - anti-fouling materials Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-442007 SN - 1866-8372 IS - 919 ER - TY - JOUR A1 - Bhuvanesh, Thanga A1 - Saretia, Shivam A1 - Roch, Toralf A1 - Schöne, Anne-Christin A1 - Rottke, Falko O. A1 - Kratz, Karl A1 - Wang, Weiwei A1 - Ma, Nan A1 - Schulz, Burkhard A1 - Lendlein, Andreas T1 - Langmuir-Schaefer films of fibronectin as designed biointerfaces for culturing stem cells JF - Polymers for advanced technologies N2 - Glycoproteins adsorbing on an implant upon contact with body fluids can affect the biological response in vitro and in vivo, depending on the type and conformation of the adsorbed biomacromolecules. However, this process is poorly characterized and so far not controllable. Here, protein monolayers of high molecular cohesion with defined density are transferred onto polymeric substrates by the Langmuir-Schaefer (LS) technique and were compared with solution deposition (SO) method. It is hypothesized that on polydimethylsiloxane (PDMS), a substrate with poor cell adhesion capacity, the fibronectin (FN) layers generated by the LS and SO methods will differ in their organization, subsequently facilitating differential stem cell adhesion behavior. Indeed, atomic force microscopy visualization and immunofluorescence images indicated that organization of the FN layer immobilized on PDMS was uniform and homogeneous. In contrast, FN deposited by SO method was rather heterogeneous with appearance of structures resembling protein aggregates. Human mesenchymal stem cells showed reduced absolute numbers of adherent cells, and the vinculin expression seemed to be higher and more homogenously distributed after seeding on PDMS equipped with FN by LS in comparison with PDMS equipped with FN by SO. These divergent responses could be attributed to differences in the availability of adhesion molecule ligands such as the Arg-Gly-Asp (RGD) peptide sequence presented at the interface. The LS method allows to control the protein layer characteristics, including the thickness and the protein orientation or conformation, which can be harnessed to direct stem cell responses to defined outcomes, including migration and differentiation. Copyright (c) 2016 John Wiley & Sons, Ltd. KW - Langmuir-Schaefer method KW - protein adsorption KW - stem cell adhesion KW - cell culture KW - fibronectin Y1 - 2017 U6 - https://doi.org/10.1002/pat.3910 SN - 1042-7147 SN - 1099-1581 VL - 28 SP - 1305 EP - 1311 PB - Wiley CY - Hoboken ER - TY - JOUR A1 - Koshkina, Olga A1 - Westmeier, Dana A1 - Lang, Thomas A1 - Bantz, Christoph A1 - Hahlbrock, Angelina A1 - Würth, Christian A1 - Resch-Genger, Ute A1 - Braun, Ulrike A1 - Thiermann, Raphael A1 - Weise, Christoph A1 - Eravci, Murat A1 - Mohr, Benjamin A1 - Schlaad, Helmut A1 - Stauber, Roland H. A1 - Docter, Dominic A1 - Bertin, Annabelle A1 - Maskos, Michael T1 - Tuning the Surface of Nanoparticles: Impact of Poly(2-ethyl-2-oxazoline) on Protein Adsorption in Serum and Cellular Uptake JF - Macromolecular bioscience N2 - Due to the adsorption of biomolecules, the control of the biodistribution of nanoparticles is still one of the major challenges of nanomedicine. Poly(2-ethyl-2-oxazoline) (PEtOx) for surface modification of nanoparticles is applied and both protein adsorption and cellular uptake of PEtOxylated nanoparticles versus nanoparticles coated with poly(ethylene glycol) (PEG) and non-coated positively and negatively charged nanoparticles are compared. Therefore, fluorescent poly(organosiloxane) nanoparticles of 15 nm radius are synthesized, which are used as a scaffold for surface modification in a grafting onto approach. With multi-angle dynamic light scattering, asymmetrical flow field-flow fractionation, gel electrophoresis, and liquid chromatography-mass spectrometry, it is demonstrated that protein adsorption on PEtOxylated nanoparticles is extremely low, similar as on PEGylated nanoparticles. Moreover, quantitative microscopy reveals that PEtOxylation significantly reduces the non-specific cellular uptake, particularly by macrophage-like cells. Collectively, studies demonstrate that PEtOx is a very effective alternative to PEG for stealth modification of the surface of nanoparticles. KW - cellular uptake KW - nanoparticles KW - poly(2-ethyl-2oxazoline) KW - poly(ethylene glycol) KW - protein adsorption Y1 - 2016 U6 - https://doi.org/10.1002/mabi.201600074 SN - 1616-5187 SN - 1616-5195 VL - 16 SP - 1287 EP - 1300 PB - Wiley-VCH CY - Weinheim ER - TY - JOUR A1 - Neffe, Axel T. A1 - von Rüsten-Lange, Maik A1 - Braune, Steffen A1 - Lützow, Karola A1 - Roch, Toralf A1 - Richau, Klaus A1 - Jung, Friedrich A1 - Lendlein, Andreas T1 - Poly(ethylene glycol) grafting to Poly(ether imide) membranes - influence on protein adsorption and Thrombocyte adhesion JF - Macromolecular bioscience N2 - The chain length and end groups of linear PEG grafted on smooth surfaces is known to influence protein adsorption and thrombocyte adhesion. Here, it is explored whether established structure function relationships can be transferred to application relevant, rough surfaces. Functionalization of poly(ether imide) (PEI) membranes by grafting with monoamino PEG of different chain lengths (M-n=1kDa or 10kDa) and end groups (methoxy or hydroxyl) is proven by spectroscopy, changes of surface hydrophilicity, and surface shielding effects. The surface functionalization does lead to reduction of adsorption of BSA, but not of fibrinogen. The thrombocyte adhesion is increased compared to untreated PEI surfaces. Conclusively, rough instead of smooth polymer or gold surfaces should be investigated as relevant models. KW - biomaterials KW - poly(ethylene glycol) KW - protein adsorption KW - surface functionalization KW - thrombocyte adhesion Y1 - 2013 U6 - https://doi.org/10.1002/mabi.201300309 SN - 1616-5187 SN - 1616-5195 VL - 13 IS - 12 SP - 1720 EP - 1729 PB - Wiley-VCH CY - Weinheim ER - TY - THES A1 - Won, Jooyoung T1 - Dynamic and equilibrium adsorption behaviour of ß-lactoglobulin at the solution/tetradecane interface: Effect of solution concentration, pH and ionic strength T1 - Dynamik und Gleichgewicht der Adsorption von ß-Lactoglobulin an der Grenzfläche Lösung / Tetradecan (W/TD) N2 - Proteins are amphiphilic and adsorb at liquid interfaces. Therefore, they can be efficient stabilizers of foams and emulsions. β-lactoglobulin (BLG) is one of the most widely studied proteins due to its major industrial applications, in particular in food technology. In the present work, the influence of different bulk concentration, solution pH and ionic strength on the dynamic and equilibrium pressures of BLG adsorbed layers at the solution/tetradecane (W/TD) interface has been investigated. Dynamic interfacial pressure (Π) and interfacial dilational elastic modulus (E’) of BLG solutions for various concentrations at three different pH values of 3, 5 and 7 at a fixed ionic strength of 10 mM and for a selected fixed concentration at three different ionic strengths of 1 mM, 10 mM and 100 mM are measured by Profile Analysis Tensiometer PAT-1 (SINTERFACE Technologies, Germany). A quantitative data analysis requires additional consideration of depletion due to BLG adsorption at the interface at low protein bulk concentrations. This fact makes experiments more efficient when oil drops are studied in the aqueous protein solutions rather than solution drops formed in oil. On the basis of obtained experimental data, concentration dependencies and the effect of solution pH on the protein surface activity was qualitatively analysed. In the presence of 10 mM buffer, we observed that generally the adsorbed amount is increasing with increasing BLG bulk concentration for all three pH values. The adsorption kinetics at pH 5 result in the highest Π values at any time of adsorption while it exhibits a less active behaviour at pH 3. Since the experimental data have not been in a good agreement with the classical diffusion controlled model due to the conformational changes which occur when the protein molecules get in contact with the hydrophobic oil phase in order to adapt to the interfacial environment, a new theoretical model is proposed here. The adsorption kinetics data were analysed with the newly proposed model, which is the classical diffusion model but modified by assuming an additional change in the surface activity of BLG molecules when adsorbing at the interface. This effect can be expressed through the adsorption activity constant in the corresponding equation of state. The dilational visco-elasticity of the BLG adsorbed interfacial layers is determined from measured dynamic interfacial tensions during sinusoidal drop area variations. The interfacial tension responses to these harmonic drop oscillations are interpreted with the same thermodynamic model which is used for the corresponding adsorption isotherm. At a selected BLG concentration of 2×10-6 mol/l, the influence of the ionic strength using different buffer concentration of 1, 10 and 100 mM on the interfacial pressure was studied. It is affected weakly at pH 5, whereas it has a strong impact by increasing buffer concentration at pH 3 and 7. In conclusion, the structure formation of BLG adsorbed layer in the early stage of adsorption at the W/TD interface is similar to those of the solution/air (W/A) surface. However, the equation of state at the W/TD interface provides an adsorption activity constant which is almost two orders of magnitude higher than that for the solution/air surface. At the end of this work, a new experimental tool called Drop and Bubble Micro Manipulator DBMM (SINTERFACE Technologies, Germany) has been introduced to study the stability of protein covered bubbles against coalescence. Among the available protocols the lifetime between the moment of contact and coalescence of two contacting bubble is determined for different BLG concentrations. The adsorbed amount of BLG is determined as a function of time and concentration and correlates with the observed coalescence behaviour of the contacting bubbles. N2 - Die vorliegende Arbeit ist ein Beitrag zum Verständnis des Überganges von der qualitativen zur quantitativen Beschreibung der Adsorption von Proteinen an der Wasser/Öl- Grenzfläche. Dabei wird die Adsorption des Molkeproteins ß-Lactoglobulin (BLG) an der Wasser/Tetradekan (W/TD) Grenzfläche untersucht. Die Proteinadsorption an Grenzflächen zwischen zwei nicht mischbaren Flüssigkeiten ist ein Zeitprozess. Die Tropfenprofil-Analysen-Tensiometrie (PAT) hat sich als optimale Methode erwiesen, um den Prozess der Bildung von Proteinadsorptionsschichten an Flüssig-/flüssig-Grenzflächen quantitativ zu untersuchen. Die gemessenen dynamischen Grenzflächenspannungen können genutzt werden, um die adsorbierte Menge von Protein an Grenzflächen zu bestimmen. Zusätzlich erlaubt die Methode, durch periodische Tropfenoszillationen, die Messung der Dilatations-Viskoelastizität. Die experimentellen Ergebnisse zeigen deutlich, dass die Adsorption von Proteinen mit der Konzentration ansteigt. Der Adsorptionsprozess von Proteinen ist ähnlich dem von Tensiden, allerdings wird seine Beschreibung wesentlich komplizierter, durch die zusätzliche Möglichkeit der Konformationsänderungen der Proteinmoleküle an der Grenzfläche. Ein kürzlich im Rahmen dieser Dissertation entwickeltes Modell zur Adsorptionskinetik von Proteinen wurde genutzt, um experimentelle Daten für BLG zu interpretieren. Dieses kinetische Modell erlaubt es, den Mechanismus der Proteinadsorption an der Wasser/Öl-Grenzfläche zu beschreiben, was durch ältere Modelle bisher nicht möglich war. Im neu entwickelten Modell wurde die klassische Diffusionstheorie so modifiziert, dass eine Änderung der Adsorptionsaktivität der adsorbierenden Proteinmoleküle berücksichtigt wird. Die Änderung der Adsorptionsaktivität geschieht durch den Kontakt adsorbierter BLG-Moleküle an der Wasser/Öl-Grenzfläche. Es wird nach diesem neuen Modell angenommen, dass die Adsorptionsaktivität eine Funktion der Adsorptionszeit ist. Die ansteigende Adsorptionaktivität ist erforderlich, um den Adsorptionsprozess von BLG über den gesamten Zeitbereich quantitativ zu beschrieben. Mit diesem neuen Modell wurde es möglich, die experimentellen Daten zur Adsorptionskinetik sowie zur Dilatationsrheologie von Adsorptionsschichten bei unterschiedlichen BLG-Konzentrationen, pH-Werten und Ionenstärken an der Grenzfläche Lösung/Tetradekan quantitativ zu beschreiben. Die Ergebnisse dienen als Ausgangspunkt für weitere Entwicklungen zur Verbesserung des Verständnisses der Stabilität von Schäumen und Emulsionen, die durch die Dynamik der Adsorption von Molekülen wie BLG signifikant beeinflusst wird. KW - beta-lactoglobulin KW - water/tetradecane interface KW - drop profile analysis tensiometry KW - dynamic interfacial tensions KW - protein adsorption KW - pH effect KW - ionic strength effect KW - protein stabilized foams KW - drop and bubble coalescence KW - interfacial dynamics KW - capillary pressure tensiometry KW - drop-drop interaction KW - bubble-bubble interaction KW - ß-Lactoglobulin KW - Flüssig-/flüssig-Grenzflächen KW - Wasser/Öl-Grenzfläche KW - Grenzfläche Lösung/Tetradecan KW - Dynamik der Adsorption KW - Gleichgewicht der Adsorption KW - Proteinadsorption KW - Tropfenprofil-Analysen-Tensiometrie KW - Tropfenoszillationen KW - Dilatations-Viskoelastizität KW - klassische Diffusionstheorie KW - Konformationsänderungen KW - Adsorptionsaktivität KW - Wirkung des pH-Werten KW - Wirkung des Ionenstärken KW - Stabilität von Schäumen KW - Stabilität von Emulsionen Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-99167 ER - TY - THES A1 - Groth, Thomas T1 - Die Bedeutung der Volumen- und Oberflächeneigenschaften von Biomaterialien für die Adsorption von Proteinen und nachfolgende zelluläre Reaktionen N2 - Es ist schon seit längerer Zeit bekannt, dass nach Kontakt des Biomaterials mit der biologischen Umgebung bei Implantation oder extrakorporaler Wechselwirkung zunächst Proteine aus dem umgebenden Milieu adsorbiert werden, wobei die Oberflächeneigenschaften des Materials die Zusammensetzung der Proteinschicht und die Konformation der darin enthaltenden Proteine determinieren. Die nachfolgende Wechselwirkung von Zellen mit dem Material wird deshalb i.d.R. von der Adsorbatschicht vermittelt. Der Einfluss der Oberflächen auf die Zusammensetzung und Konformation der Proteine und die nachfolgende Wechselwirkung mit Zellen ist von besonderem Interesse, da einerseits eine Aussage über die Anwendbarkeit ermöglicht wird, andererseits Erkenntnisse über diese Zusammenhänge für die Entwicklung neuer Materialien mit verbesserter Biokompatibilität genutzt werden können. In der vorliegenden Habilitationsschrift wurde deshalb der Einfluss der Zusammensetzung von Polymeren bzw. von deren Oberflächeneigenschaften auf die Adsorption von Proteinen, den Aktivitätszustand der plasmatischen Gerinnung und die Adhäsion von Zellen untersucht. Dabei wurden auch Möglichkeiten zur Beeinflussung dieser Vorgänge über eine Veränderung der Volumenzusammensetzung oder durch Oberflächenmodifikationen von Biomaterialien vorgestellt. Erkenntnisse aus diesen Arbeiten konnten für die Entwicklung von Membranen für Biohybrid-Organe genutzt werden. N2 - The implantation of biomaterials or the contact of blood with extracorporal devices leads to the rapid adsorption of proteins from the surrounding biological fluids. The surface properties of materials determine the composition of the adsorption layer and the conformation of adsorbed proteins. Hence, the subsequent interaction of cells with biomaterials is dependent on the adsorption layer of proteins. The detailed knowledge on the role of surface properties in protein adsorption and cellular interactions is a useful means to learn about the biomedical applicability of materials and to develop novel materials with improved biocompatibility. The thesis describes the influence of polymer composition and surface properties on protein adsorption, the activation of blood clotting and adhesion of cells. The thesis presents options to modify the reactions of the biological system by the modification of bulk or surface composition of polymers. Results of these studies have been used to develop polymer membranes for biohybrid organs. KW - Biomaterialien KW - Polymere KW - Protein Adsorption KW - Zelladhäsion KW - Biohybride Organe KW - biomaterials KW - polymers KW - protein adsorption KW - cell adhesion KW - biohybrid organs Y1 - 2003 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-0001022 ER -