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Dive into the research topics where Mikhail V. Tsurkan is active.

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Featured researches published by Mikhail V. Tsurkan.


Scientific Reports | 2015

Glycosaminoglycan-based hydrogels to modulate heterocellular communication in in vitro angiogenesis models

Karolina Chwalek; Mikhail V. Tsurkan; Uwe Freudenberg; Carsten Werner

Angiogenesis, the outgrowth of blood vessels, is crucial in development, disease and regeneration. Studying angiogenesis in vitro remains challenging because the capillary morphogenesis of endothelial cells (ECs) is controlled by multiple exogenous signals. Therefore, a set of in situ-forming starPEG-heparin hydrogels was used to identify matrix parameters and cellular interactions that best support EC morphogenesis. We showed that a particular type of soft, matrix metalloproteinase-degradable hydrogel containing covalently bound integrin ligands and reversibly conjugated pro-angiogenic growth factors could boost the development of highly branched, interconnected, and lumenized endothelial capillary networks. Using these effective matrix conditions, 3D heterocellular interactions of ECs with different mural cells were demonstrated that enabled EC network modulation and maintenance of stable vascular capillaries over periods of about one month in vitro. The approach was also shown to permit in vitro tumor vascularization experiments with unprecedented levels of control over both ECs and tumor cells. In total, the introduced 3D hydrogel co-culture system could offer unique options for dissecting and adjusting biochemical, biophysical, and cell-cell triggers in tissue-related vascularization models.


Nature Chemistry | 2010

Mineralization of the metre-long biosilica structures of glass sponges is templated on hydroxylated collagen

Hermann Ehrlich; Rainer Deutzmann; Eike Brunner; Enrico Cappellini; Hannah Koon; Caroline Solazzo; Yue Yang; Dave Ashford; Jane Thomas-Oates; M. Lubeck; C. Baessmann; Tobias Langrock; Ralf Hoffmann; Gert Wörheide; Joachim Reitner; Paul Simon; Mikhail V. Tsurkan; Alexander V. Ereskovsky; D. Kurek; V. V. Bazhenov; S. Hunoldt; Michael Mertig; A. V. Vyalikh; S. L. Molodtsov; Kurt Kummer; Hartmut Worch; V. Smetacek; Matthew J. Collins

The minerals involved in the formation of metazoan skeletons principally comprise glassy silica, calcium phosphate or carbonate. Because of their ancient heritage, glass sponges (Hexactinellida) may shed light on fundamental questions such as molecular evolution, the unique chemistry and formation of the first skeletal silica-based structures, and the origin of multicellular animals. We have studied anchoring spicules from the metre-long stalk of the glass rope sponge (Hyalonema sieboldi; Porifera, Class Hexactinellida), which are remarkable for their size, durability, flexibility and optical properties. Using slow-alkali etching of biosilica, we isolated the organic fraction, which was revealed to be dominated by a hydroxylated fibrillar collagen that contains an unusual [Gly-3Hyp-4Hyp] motif. We speculate that this motif is predisposed for silica precipitation, and provides a novel template for biosilicification in nature.


Advanced Materials | 2013

Defined Polymer–Peptide Conjugates to Form Cell‐Instructive starPEG–Heparin Matrices In Situ

Mikhail V. Tsurkan; Karolina Chwalek; Silvana Prokoph; Andrea Zieris; Kandice R. Levental; Uwe Freudenberg; Carsten Werner

Poly(ethylene glycol)-peptide- and glycosaminoglycan-peptide conjugates obtained by a regio-selective amino acid protection strategy are converted into cell-instructive hydrogel matrices capable of inducing morphogenesis in embedded human vascular endothelial cells and dorsal root ganglia.


Nature Communications | 2013

Bio-responsive polymer hydrogels homeostatically regulate blood coagulation

Manfred F. Maitz; Uwe Freudenberg; Mikhail V. Tsurkan; Marion Fischer; Theresa Beyrich; Carsten Werner

Bio-responsive polymer architectures can empower medical therapies by engaging molecular feedback-response mechanisms resembling the homeostatic adaptation of living tissues to varying environmental constraints. Here we show that a blood coagulation-responsive hydrogel system can deliver heparin in amounts triggered by the environmental levels of thrombin, the key enzyme of the coagulation cascade, which—in turn—becomes inactivated due to released heparin. The bio-responsive hydrogel quantitatively quenches blood coagulation over several hours in the presence of pro-coagulant stimuli and during repeated incubation with fresh, non-anticoagulated blood. These features enable the introduced material to provide sustainable, autoregulated anticoagulation, addressing a key challenge of many medical therapies. Beyond that, the explored concept may facilitate the development of materials that allow the effective and controlled application of drugs and biomolecules.


Scientific Reports | 2013

Discovery of 505-million-year old chitin in the basal demosponge Vauxia gracilenta

Hermann Ehrlich; J. Keith Rigby; J. P. Botting; Mikhail V. Tsurkan; Carsten Werner; Petra Schwille; Zdeněk Petrášek; Andrzej Pisera; Paul Simon; Victor N. Sivkov; D. V. Vyalikh; S. L. Molodtsov; Denis V. Kurek; Martin Kammer; S. Hunoldt; Richard T. Born; D. Stawski; Axel Steinhof; Vasily V. Bazhenov; T. Geisler

Sponges are probably the earliest branching animals, and their fossil record dates back to the Precambrian. Identifying their skeletal structure and composition is thus a crucial step in improving our understanding of the early evolution of metazoans. Here, we present the discovery of 505–million-year-old chitin, found in exceptionally well preserved Vauxia gracilenta sponges from the Middle Cambrian Burgess Shale. Our new findings indicate that, given the right fossilization conditions, chitin is stable for much longer than previously suspected. The preservation of chitin in these fossils opens new avenues for research into other ancient fossil groups.


Journal of Structural Biology | 2013

Identification and first insights into the structure and biosynthesis of chitin from the freshwater sponge Spongilla lacustris

Hermann Ehrlich; Oksana V. Kaluzhnaya; Eike Brunner; Mikhail V. Tsurkan; Alexander V. Ereskovsky; Micha Ilan; Konstantin R. Tabachnick; Vasilii V. Bazhenov; Silvia Paasch; Martin Kammer; René Born; Allison L. Stelling; Roberta Galli; S. I. Belikov; O. V. Petrova; Victor V. Sivkov; D. V. Vyalikh; Sebastian Hunoldt; Gert Wörheide

This work demonstrates that chitin is an important structural component within the skeletal fibers of the freshwater sponge Spongilla lacustris. Using a variety of analytical techniques ((13)C solid state NMR, FT-IR, Raman, NEXAFS, ESI-MS, Morgan-Elson assay and Calcofluor White Staining); we show that this sponge chitin is much closer to α-chitin, known to be present in other animals, than to β-chitin. Genetic analysis confirmed the presence of chitin synthases, which are described for the first time in a sponge. The presence of chitin in both marine (demosponges and hexactinellids) and freshwater sponges indicates that this important structural biopolymer was already present in their common ancestor.


International Journal of Biological Macromolecules | 2013

Isolation and identification of chitin in three-dimensional skeleton of Aplysina fistularis marine sponge

Marcin Wysokowski; Vasilii V. Bazhenov; Mikhail V. Tsurkan; Roberta Galli; Allison L. Stelling; Hartmut Stöcker; Sabine Kaiser; Elke Niederschlag; Günter Gärtner; Thomas Behm; Micha Ilan; Alexander Y. Petrenko; Teofil Jesionowski; Hermann Ehrlich

The recent discovery of chitin within skeletons of numerous marine and freshwater sponges (Porifera) stimulates further experiments to identify this structural aminopolysaccharide in new species of these aquatical animals. Aplysina fistularis (Verongida: Demospongiae: Porifera) is well known to produce biologically active bromotyrosines. Here, we present a detailed study of the structural and physico-chemical properties of the three-dimensional skeletal scaffolds of this sponge. Calcofluor white staining, Raman and IR spectroscopy, ESI-MS as well as chitinase digestion test were applied in order to unequivocally prove the first discovery of α-chitin in skeleton of A. fistularis.


Biomaterials | 2011

Two-tier hydrogel degradation to boost endothelial cell morphogenesis.

Karolina Chwalek; Kandice R. Levental; Mikhail V. Tsurkan; Andrea Zieris; Uwe Freudenberg; Carsten Werner

Cell-responsive degradation of biofunctional scaffold materials is required in many tissue engineering strategies and commonly achieved by the incorporation of protease-sensitive oligopeptide units. In extension of this approach, we combined protease-sensitive and -insensitive cleavage sites for the far-reaching control over degradation rates of starPEG-heparin hydrogel networks with orthogonally modulated elasticity, RGD presentation and VEGF delivery. Enzymatic cleavage was massively accelerated when the accessibility of the gels for proteases was increased through non-enzymatic cleavage of ester bonds. The impact of gel susceptibility to degradation was explored for the 3-dimensional ingrowth of human endothelial cells. Gels with accelerated degradation and VEGF release resulted in strongly enhanced endothelial cell invasion in vitro as well as blood vessel density in the chicken chorioallantoic membrane assay in vivo. Thus, combination of protease-sensitive and -insensitive cleavage sites can amplify the degradation of bioresponsive gel materials in ways that boost endothelial cell morphogenesis.


Macromolecular Rapid Communications | 2010

Modular StarPEG‐Heparin Gels with Bifunctional Peptide Linkers

Mikhail V. Tsurkan; Karolina Chwalek; Kandice R. Levental; Uwe Freudenberg; Carsten Werner

Cell responsive materials are instrumental to regenerative therapies. Here, we report about a novel biohybrid hydrogel that consists of heparin and peptide-conjugated star-shaped poly(ethylene glycol), crosslinked by peptide units that combine matrix metalloproteinase (MMP) sensitivity and cell adhesive modules. Taking advantage of the high affinity of vascular endothelial growth factor to heparin, we illustrate the applicability of our hydrogels as a novel system that is supportive of cellular remodeling and three-dimensional migration of human endothelial cells.


Chemical Communications | 2010

Enzymatically degradable heparin-polyethylene glycol gels with controlled mechanical properties.

Mikhail V. Tsurkan; Kandice R. Levental; Uwe Freudenberg; Carsten Werner

A new class of biodegradable materials was prepared by combining polyethylene glycol, heparin, and a matrix metalloproteinase-cleavable peptide sequence into a well-defined hydrogel network which mimics native extracellular matrices in its ability to provide mechanical support and chemical signals as well as elicit a dynamic reciprocal response.

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Hermann Ehrlich

Freiberg University of Mining and Technology

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Karolina Chwalek

Dresden University of Technology

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Yixin Zhang

Dresden University of Technology

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Vasilii V. Bazhenov

Freiberg University of Mining and Technology

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Kandice R. Levental

University of Texas Health Science Center at Houston

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Marcin Wysokowski

Poznań University of Technology

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Teofil Jesionowski

Poznań University of Technology

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D. V. Vyalikh

Saint Petersburg State University

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