TY - JOUR A1 - Sauter, Tilman A1 - Kratz, Karl A1 - Farhan, Muhammad A1 - Heuchel, Matthias A1 - Lendlein, Andreas T1 - Design and fabrication of fiber mesh actuators JF - Applied materials today N2 - Soft actuator performance can be tuned by chemistry or mechanical manipulation, but this adjustability is limited especially in view of their growing technological relevance. Inspired from textile engineering, we designed and fabricated fiber mesh actuators and introduced new features like anisotropic behavior and soft-tissue like elastic deformability. Design criteria for the meshes are the formation of fiber bundles, the angle between fiber bundles in different stacked layers and covalent crosslinks forming within and between fibers at their interfacial contact areas. Through crosslinking the interfiber bond strength increased from a bond transmitting neither axial nor rotational loads (pin joint) to a bond strength capable of both (welded joint). For non-linear elastic stiffening, stacked fiber bundles with four embracing fibers were created forming microstructural rhombus shapes. Loading the rhombus diagonally allowed generation of “soft tissue”-like mechanics. By adjustment of stacking angles, the point of strong increase in stress is tuned. While the highest stresses are observed in aligned and crosslinked fiber mats along the direction of the fiber, the strongest shape-memory actuation behavior is found in randomly oriented fiber mats. Fiber mesh actuators controlled by temperature are of high significance as soft robot skins and as for active patches supporting tissue regeneration. Y1 - 2022 U6 - https://doi.org/10.1016/j.apmt.2022.101562 SN - 2352-9407 VL - 29 PB - Elsevier CY - Amsterdam ER - TY - JOUR A1 - Sauter, Tilman A1 - Geiger, Brett A1 - Kratz, Karl A1 - Lendlein, Andreas T1 - Encasement of metallic cardiovascular stents with endothelial cell-selective copolyetheresterurethane microfibers JF - Polymers for advanced technologies N2 - Cardiovascular metallic stents established in clinical application are typically coated by a thin polymeric layer on the stent struts to improve hemocompatibility, whereby often a drug is added to the coating to inhibit neointimal hyperplasia. Besides such thin film coatings recently nano/microfiber coated stents are investigated, whereby the fibrous coating was applied circumferential on stents. Here, we explored whether a thin fibrous encasement of metallic stents with preferentially longitudinal aligned fibers and different local fiber densities can be achieved by electrospinning. An elastic degradable copolyetheresterurethane, which is reported to selectively enhance the adhesion of endothelial cells, while simultaneously rejecting smooth muscle cells, was utilized for stent coating. The fibrous stent encasements were microscopically assessed regarding their single fiber diameters, fiber covered area and fiber alignment at three characteristic stent regions before and after stent expansion. Stent coatings with thicknesses in the range from 30 to 50 mu m were achieved via electrospinning with 1,1,1,3,3,3-hexafluoro-2-propanol (HFP)-based polymer solution, while a mixture of HFP and formic acid as solvent resulted in encasements with a thickness below 5 mu m comprising submicron sized single fibers. All polymeric encasements were mechanically stable during expansion, whereby the fibers deposited on the struts remained their position. The observed changes in fiber density and diameter indicated diverse local deformation mechanisms of the microfibers at the different regions between the struts. Based on these results it can be anticipated that the presented fibrous encasement of stents might be a promising alternative to stents with polymeric strut coatings releasing anti-proliferative drugs. Copyright (c) 2015 John Wiley & Sons, Ltd. KW - multifunctional polymers KW - stent coatings KW - electrospinning KW - biomaterials KW - degradable polymers Y1 - 2015 U6 - https://doi.org/10.1002/pat.3583 SN - 1042-7147 SN - 1099-1581 VL - 26 IS - 10 SP - 1209 EP - 1216 PB - Wiley-Blackwell CY - Hoboken ER - TY - JOUR A1 - Sauter, Tilman A1 - Kratz, Karl A1 - Heuchel, Matthias A1 - Lendlein, Andreas T1 - Fiber diameter as design parameter for tailoring the macroscopic shape-memory performance of electrospun meshes JF - Materials and design N2 - Fibrous shape-memory polymer (SMP) scaffolds were investigated considering the fiber as basic microstructural feature. By reduction of the fiber diameter in randomly oriented electrospun polyetherurethane (PEU) meshes from the micro-to the nano-scale, we observed changes in the molecular orientation within the fibers and its impact on the structural and shape-memory performance. It was assumed that a spatial restriction by reduction of the fiber diameter increases molecular orientation along the orientation of the fiber. The stress-strain relation of random PEU scaffolds is initially determined by the 3D arrangement of the fibers and thus is independent of the molecular orientation. Increasing the molecular orientation with decreasing single fiber diameter in scaffolds composed of randomly arranged fibers did not alter the initial stiffness and peak stress but strongly influenced the elongation at break and the stress increase above the Yield point. Reduction of the single fiber diameter also distinctly improved the shape-memory performance of the scaffolds. Fibers with nanoscale diameters (< 100 nm) possessed an almost complete shape recovery, high recovery stresses and fast relaxation kinetics, while the shape fixity was found to decrease with decreasing fiber diameter. Hence, the fiber diameter is a relevant design parameter for SMP. KW - Nanofiber KW - Shape-memory polymer KW - Electrospinning KW - Function by design KW - Molecular orientation Y1 - 2021 U6 - https://doi.org/10.1016/j.matdes.2021.109546 SN - 1873-4197 VL - 202 PB - Elsevier CY - Amsterdam [u.a.] ER - TY - THES A1 - Sauter, Tilman T1 - Function by structure BT - microstructural approaches to tailor surface, mechanical and shape-memory properties of porous polymer structures Y1 - 2015 ER - TY - JOUR A1 - Fang, Liang A1 - Gould, Oliver E. C. A1 - Lysyakova, Liudmila A1 - Jiang, Yi A1 - Sauter, Tilman A1 - Frank, Oliver A1 - Becker, Tino A1 - Schossig, Michael A1 - Kratz, Karl A1 - Lendlein, Andreas T1 - Implementing and quantifying the shape-memory effect of single polymeric micro/nanowires with an atomic force microscope JF - ChemPhysChem : a European journal of chemical physics and physical chemistry N2 - The implementation of shape-memory effects (SME) in polymeric micro- or nano-objects currently relies on the application of indirect macroscopic manipulation techniques, for example, stretchable molds or phantoms, to ensembles of small objects. Here, we introduce a method capable of the controlled manipulation and SME quantification of individual micro- and nano-objects in analogy to macroscopic thermomechanical test procedures. An atomic force microscope was utilized to address individual electro-spun poly(ether urethane) (PEU) micro- or nanowires freely suspended between two micropillars on a micro-structured silicon substrate. In this way, programming strains of 10 +/- 1% or 21 +/- 1% were realized, which could be successfully fixed. An almost complete restoration of the original free-suspended shape during heating confirmed the excellent shape-memory performance of the PEU wires. Apparent recovery stresses of sigma(max,app)=1.2 +/- 0.1 and 33.3 +/- 0.1MPa were obtained for a single microwire and nanowire, respectively. The universal AFM test platform described here enables the implementation and quantification of a thermomechanically induced function for individual polymeric micro- and nanosystems. KW - cyclic thermomechanical testing KW - atomic force microscopy KW - soft matter micro- and nanowires KW - shape-memory effect KW - materials science Y1 - 2018 U6 - https://doi.org/10.1002/cphc.201701362 SN - 1439-4235 SN - 1439-7641 VL - 19 IS - 16 SP - 2078 EP - 2084 PB - Wiley-VCH CY - Weinheim ER - TY - JOUR A1 - Haase, Tobias A1 - Krost, Annalena A1 - Sauter, Tilman A1 - Kratz, Karl A1 - Peter, Jan A1 - Kamann, Stefanie A1 - Jung, Friedrich A1 - Lendlein, Andreas A1 - Zohlnhöfer, Dietlind A1 - Rüder, Constantin T1 - In vivo biocompatibility assessment of poly (ether imide) electrospun scaffolds JF - Journal of Tissue Engineering and Regenerative Medicine N2 - Poly(ether imide) (PEI), which can be chemically functionalized with biologically active ligands, has emerged as a potential biomaterial for medical implants. Electrospun PEI scaffolds have shown advantageous properties, such as enhanced endothelial cell adherence, proliferation and low platelet adhesion in in vitro experiments. In this study, the in vivo behaviour of electrospun PEI scaffolds and PEI films was examined in a murine subcutaneous implantation model. Electrospun PEI scaffolds and films were surgically implanted subcutaneously in the dorsae of mice. The surrounding subcutaneous tissue response was examined via histopathological examination at 7 and 28days after implantation. No serious adverse events were observed for both types of PEI implants. The presence of macrophages or foreign body giant cells in the vicinity of the implants and the formation of a fibrous capsule indicated a normal foreign body reaction towards PEI films and scaffolds. Capsule thickness and inflammatory infiltration cells significantly decreased for PEI scaffolds during days 7-28 while remaining unchanged for PEI films. The infiltration of cells into the implant was observed for PEI scaffolds 7days after implantation and remained stable until 28days of implantation. Additionally some, but not all, PEI scaffold implants induced the formation of functional blood vessels in the vicinity of the implants. Conclusively, this study demonstrates the in vivo biocompatibility of PEI implants, with favourable properties of electrospun PEI scaffolds regarding tissue integration and wound healing. KW - poly(ether imide) KW - in vivo study KW - electrospun scaffold KW - capsule formation KW - foreign body giant cells KW - vascularization Y1 - 2017 U6 - https://doi.org/10.1002/term.2002 SN - 1932-6254 SN - 1932-7005 VL - 11 IS - 4 SP - 1034 EP - 1044 PB - Wiley CY - Hoboken ER - TY - JOUR A1 - Schneider, Tobias A1 - Kohl, Benjamin A1 - Sauter, Tilman A1 - Kratz, Karl A1 - Lendlein, Andreas A1 - Ertel, Wolfgang A1 - Schulze-Tanzil, Gundula T1 - Influence of fiber orientation in electrospun polymer scaffolds on viability, adhesion and differentiation of articular chondrocytes JF - Clinical hemorheology and microcirculation : blood flow and vessels N2 - Degradable polymers with a tailorable degradation rate might be promising candidate materials for biomaterial-based cartilage repair. In view of the poor intrinsic healing capability of cartilage, implantation of autologous chondrocytes seeded on a biocompatible slow degrading polymer might be an encouraging approach to improve cartilage repair in the future. This study was undertaken to test if the fiber orientation (random versus aligned) of two different degradable polymers and a polymer intended for long term applications could influence primary articular chondrocytes growth and ultrastructure. A degradable copoly(ether) esterurethane (PDC) was synthesized via co-condensation of poly(p-dioxanone) diol and poly(epsilon-caprolactone) diol using an aliphatic diisocyanate as linker. Poly(p-dioxanone) (PPDO) was applied as commercially available degradable polymer, while polyetherimide (PEI) was chosen as biomaterial enabling surface functionalization. The fibrous scaffolds of PDC and PPDO were obtained by electrospinning using 1,1,1,3,3,3 hexafluoro-2-propanol (HFP), while for PEI dimethyl acetamide (DMAc) was applied as solvent. Primary porcine articular chondrocytes were seeded at different cell densities on the fibrous polymer scaffolds and analyzed for viability (fluorescein diacetate/ethidiumbromide staining), for type II collagen synthesis (immunolabelling), ultrastructure and orientation on the fibers (SEM: scanning electron microscopy). Vital chondrocytes adhered on all electrospun scaffolds irrespective of random and aligned topologies. In addition, the chondrocytes produced the cartilage-specific type II collagen on all tested polymer topologies suggesting their differentiated functions. SEM revealed an almost flattened chondrocytes shape on scaffolds with random fiber orientation: whereby chondrocytes growth remained mainly restricted to the scaffold surface. On aligned fibers the chondrocytes exhibited a more spindle-shaped morphology with rougher cell surfaces but only a minority of the cells aligned according to the fibers. As a next step the reduction of the fiber diameter of electrospun scaffolds should be addressed as an important parameter to mimic cartilage ECM structure. KW - Chondrocytes KW - electrospinning KW - scaffold KW - differentiation KW - multiblock copolymer Y1 - 2012 U6 - https://doi.org/10.3233/CH-2012-1608 SN - 1386-0291 VL - 52 IS - 2-4 SP - 325 EP - 336 PB - IOS Press CY - Amsterdam ER - TY - JOUR A1 - Rüder, Constantin A1 - Sauter, Tilman A1 - Kratz, Karl A1 - Haase, Tobias A1 - Peter, Jan A1 - Jung, Friedrich A1 - Lendlein, Andreas A1 - Zohlnhöfer, Dietlind T1 - Influence of fibre diameter and orientation of electrospun copolyetheresterurethanes on smooth muscle and endothelial cell behaviour JF - Clinical hemorheology and microcirculation : blood flow and vessels N2 - Polymers exhibiting cell-selective effects represent an extensive research field with high relevance for biomedical applications e.g. in the cardiovascular field supporting re-endothelialization while suppressing smooth muscle cell overgrowth. Such an endothelial cell-selective effect could be recently demonstrated for a copolyetheresterurethane (PDC) containing biodegradable poly(p-dioxanone) and poly(epsilon-caprolactone) segments, which selectively enhanced the adhesion of human umbilical vein endothelial cells (HUVEC) while suppressing the attachment of smooth muscle cells (SMC). In this study we investigated the influence of the fibre orientation (random and aligned) and fibre diameter (2 mu m and 500 nm) of electrospun PDC scaffolds on the adhesion, proliferation and apoptosis of HUVEC and SMC. Adhesion, viability and proliferation of HUVEC was diminished when the fibre diameter was reduced to a submicron scale, while the orientation of the microfibres did only slightly influence the cellular behaviour. In contrast, a submicron fibre diameter improved SMC viability. In conclusion, PDC scaffolds with micron-sized single fibres could be promising candidate materials for cell-selective stent coatings. KW - Endothelialization KW - drug eluting stent KW - degradable polymer KW - electrospinning KW - cell selectivity Y1 - 2013 U6 - https://doi.org/10.3233/CH-131787 SN - 1386-0291 SN - 1875-8622 VL - 55 IS - 4 SP - 513 EP - 522 PB - IOS Press CY - Amsterdam ER - TY - CHAP A1 - Behl, Marc A1 - Kratz, Karl A1 - Nöchel, Ulrich A1 - Sauter, Tilman A1 - Lendlein, Andreas T1 - Polymer networks capable of reversible shape-memory-effects T2 - Abstracts of papers : joint conference / The Chemical Institute of Cananda, CIC, American Chemical Society, ACS Y1 - 2014 SN - 0065-7727 VL - 248 PB - American Chemical Society CY - Washington ER - TY - CHAP A1 - Sauter, Tilman A1 - Lützow, Karola A1 - Schossig, Michael A1 - Kosmella, Hans A1 - Weigel, Thomas A1 - Kratz, Karl A1 - Lendlein, Andreas T1 - Pore morphology as structural parameter to tailor the shape-memory effect of polyuetherurethane foams T2 - Abstracts of papers : joint conference / The Chemical Institute of Cananda, CIC, American Chemical Society, ACS Y1 - 2013 SN - 0065-7727 VL - 245 PB - American Chemical Society CY - Washington ER -