Literature DB >> 21105160

In vitro and in vivo biocompatibility studies of a recombinant analogue of spidroin 1 scaffolds.

M M Moisenovich1, O L Pustovalova, A Yu Arhipova, T V Vasiljeva, O S Sokolova, V G Bogush, V G Debabov, V I Sevastianov, M P Kirpichnikov, I I Agapov.   

Abstract

The goal of this study was to generate porous scaffolds from the genetically engineered protein, an analogue of Nephila clavipes spidroin 1 (rS1/9) and to assess the properties of new rS1/9 scaffolds essential for bioengineering. The salt leaching technique was used to make the rS1/9 scaffolds of interconnected macroporous structure with spontaneously formed micropores. The tensile strength of scaffolds was 18 ± 5 N/cm(2). Scaffolds were relatively stable in a phosphate buffer but degraded in oxidizing environment after 11 weeks of incubation. Applicability of the recombinant spidroin 1 as a substrate for cell culture was demonstrated by successful 3T3 cells growth on the surface of rS1/9 films (270 ± 20 cells/mm(2) vs. 97 ± 8 cells/mm(2) on the glass surface, p < 0.01). The 3T3 fibroblasts readily proliferated within the rS1/9 scaffold (from initially plated 19 ± 2 cells/mm(3) to 3800 ± 304 cells/mm(3) after 2 weeks). By this time, cells were uniformly distributed between the surface and deeper layers (27% ± 8% and 33% ± 4%, respectively; p > 0.05), whereas the initial distribution was 58% ± 7% and 11% ± 8%, respectively; p < 0.05). The rS1/9 scaffolds implanted subcutaneously into Balb/c mice were well tolerated. Over a 2-month period, the scaffolds promoted an ingrowth of de novo formed vascularized connective tissue elements and nerve fibers. Thus, scaffolds made of the novel recombinant spidroin 1 analogue are potentially applicable in tissue engineering.
Copyright © 2010 Wiley Periodicals, Inc.

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Year:  2010        PMID: 21105160     DOI: 10.1002/jbm.a.32968

Source DB:  PubMed          Journal:  J Biomed Mater Res A        ISSN: 1549-3296            Impact factor:   4.396


  12 in total

1.  Recombinant analogue of spidroin 2 for biomedical materials.

Authors:  V G Bogush; K V Sidoruk; L I Davydova; I A Zalunin; D G Kozlov; M M Moisenovich; I I Agapov; M P Kirpichnikov; V G Debabov
Journal:  Dokl Biochem Biophys       Date:  2012-01-06       Impact factor: 0.788

2.  Biocomposite scaffolds containing regenerated silk fibroin and nanohydroxyapatite for bone tissue regeneration.

Authors:  I I Agapov; M M Moisenovich; T V Druzhinina; Ya A Kamenchuk; K V Trofimov; T V Vasilyeva; A S Konkov; A Yu Arhipova; O S Sokolova; V V Guzeev; M P Kirpichnikov
Journal:  Dokl Biochem Biophys       Date:  2011-11-19       Impact factor: 0.788

3.  Novel 3D-microcarriers from recombinant spidroin for regenerative medicine.

Authors:  M M Moisenovich; N V Malyuchenko; A Y Arkhipova; M S Kotlyarova; L I Davydova; A V Goncharenko; O I Agapova; M S Drutskaya; V G Bogush; I I Agapov; V G Debabov; M P Kirpichnikov
Journal:  Dokl Biochem Biophys       Date:  2015-09-03       Impact factor: 0.788

Review 4.  Production of protein-based polymers in Pichia pastoris.

Authors:  Marc W T Werten; Gerrit Eggink; Martien A Cohen Stuart; Frits A de Wolf
Journal:  Biotechnol Adv       Date:  2019-03-19       Impact factor: 14.227

5.  Recombinant 1F9 spidroin microgels for murine full-thickness wound repairing.

Authors:  M M Moisenovich; N V Malyuchenko; A Yu Arkhipova; A V Goncharenko; M S Kotlyarova; L I Davydova; T V Vasil'eva; V G Bogush; I I Agapov; V G Debabov; M P Kirpichnikov
Journal:  Dokl Biochem Biophys       Date:  2016-03-31       Impact factor: 0.788

6.  Functional analysis of the engineered cardiac tissue grown on recombinant spidroin fiber meshes.

Authors:  Alexander Teplenin; Anna Krasheninnikova; Nadezhda Agladze; Konstantin Sidoruk; Olga Agapova; Igor Agapov; Vladimir Bogush; Konstantin Agladze
Journal:  PLoS One       Date:  2015-03-23       Impact factor: 3.240

7.  Novel Biodegradable Polymeric Microparticles Facilitate Scarless Wound Healing by Promoting Re-epithelialization and Inhibiting Fibrosis.

Authors:  Maxim A Nosenko; Anastasia M Moysenovich; Ruslan V Zvartsev; Anastasia Y Arkhipova; Anastasia S Zhdanova; Igor I Agapov; Tamara V Vasilieva; Vladimir G Bogush; Vladimir G Debabov; Sergei A Nedospasov; Mikhail M Moisenovich; Marina S Drutskaya
Journal:  Front Immunol       Date:  2018-12-04       Impact factor: 7.561

8.  The terpolymer produced by Azotobacter chroococcum 7B: effect of surface properties on cell attachment.

Authors:  Anton Bonartsev; Sergey Yakovlev; Arasha Boskhomdzhiev; Irina Zharkova; Dmitrii Bagrov; Vera Myshkina; Tatiana Mahina; Elena Kharitonova; Olga Samsonova; Anton Zernov; Vsevolod Zhuikov; Yurii Efremov; Vera Voinova; Garina Bonartseva; Konstantin Shaitan
Journal:  PLoS One       Date:  2013-02-26       Impact factor: 3.240

9.  Cell attachment on poly(3-hydroxybutyrate)-poly(ethylene glycol) copolymer produced by Azotobacter chroococcum 7B.

Authors:  Anton P Bonartsev; Sergey G Yakovlev; Irina I Zharkova; Arasha P Boskhomdzhiev; Dmitrii V Bagrov; Vera L Myshkina; Tatiana K Makhina; Elena P Kharitonova; Olga V Samsonova; Alexey V Feofanov; Vera V Voinova; Anton L Zernov; Yurii M Efremov; Garina A Bonartseva; Konstantin V Shaitan; Michail P Kirpichnikov
Journal:  BMC Biochem       Date:  2013-05-21       Impact factor: 4.059

10.  Composite Scaffolds Containing Silk Fibroin, Gelatin, and Hydroxyapatite for Bone Tissue Regeneration and 3D Cell Culturing.

Authors:  M M Moisenovich; A Yu Arkhipova; A A Orlova; M S Drutskaya; S V Volkova; S E Zacharov; I I Agapov; M P Kirpichnikov
Journal:  Acta Naturae       Date:  2014-01       Impact factor: 1.845

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