Literature DB >> 21361368

Degradation mechanism and control of silk fibroin.

Qiang Lu1, Bing Zhang, Mingzhong Li, Baoqi Zuo, David L Kaplan, Yongli Huang, Hesun Zhu.   

Abstract

Controlling the degradation process of silk is an important and interesting subject in the field of biomaterials. In the present study, silk fibroin films with different secondary conformations and nanostructures were used to study degradation behavior in buffered protease XIV solution. Different from previous studies, silk fibroin films with highest β-sheet content achieved the highest degradation rate in our research. A new degradation mechanism revealed that degradation behavior of silk fibroin was related to not only crystal content but also hydrophilic interaction and then crystal-noncrystal alternate nanostructures. First, hydrophilic blocks of silk fibroin were degraded. Then, hydrophobic crystal blocks that were formerly surrounded and immobilized by hydrophilic blocks became free particles and moved into solution. Therefore, on the basis of the mechanism, which enables the process to be more controllable and flexible, controlling the degradation behavior of silk fibroin without affecting other performances such as its mechanical or hydrophilic properties becomes feasible, and this would greatly expand the applications of silk as a biomedical material.

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Year:  2011        PMID: 21361368      PMCID: PMC3404841          DOI: 10.1021/bm101422j

Source DB:  PubMed          Journal:  Biomacromolecules        ISSN: 1525-7797            Impact factor:   6.988


  22 in total

1.  Enzymatic degradation behavior of porous silk fibroin sheets.

Authors:  Mingzhong Li; Masayo Ogiso; Norihiko Minoura
Journal:  Biomaterials       Date:  2003-01       Impact factor: 12.479

2.  Three-dimensional aqueous-derived biomaterial scaffolds from silk fibroin.

Authors:  Ung-Jin Kim; Jaehyung Park; Hyeon Joo Kim; Masahisa Wada; David L Kaplan
Journal:  Biomaterials       Date:  2005-05       Impact factor: 12.479

3.  Sonication-induced gelation of silk fibroin for cell encapsulation.

Authors:  Xiaoqin Wang; Jonathan A Kluge; Gary G Leisk; David L Kaplan
Journal:  Biomaterials       Date:  2007-11-26       Impact factor: 12.479

4.  Non-bioengineered silk fibroin protein 3D scaffolds for potential biotechnological and tissue engineering applications.

Authors:  Biman B Mandal; Subhas C Kundu
Journal:  Macromol Biosci       Date:  2008-09-09       Impact factor: 4.979

5.  Insoluble and flexible silk films containing glycerol.

Authors:  Shenzhou Lu; Xiaoqin Wang; Qiang Lu; Xiaohui Zhang; Jonathan A Kluge; Neha Uppal; Fiorenzo Omenetto; David L Kaplan
Journal:  Biomacromolecules       Date:  2010-01-11       Impact factor: 6.988

6.  The interaction between a combined knitted silk scaffold and microporous silk sponge with human mesenchymal stem cells for ligament tissue engineering.

Authors:  Haifeng Liu; Hongbin Fan; Yue Wang; Siew Lok Toh; James C H Goh
Journal:  Biomaterials       Date:  2007-11-13       Impact factor: 12.479

7.  Insulin-like growth factor I releasing silk fibroin scaffolds induce chondrogenic differentiation of human mesenchymal stem cells.

Authors:  Lorenz Uebersax; Hans P Merkle; Lorenz Meinel
Journal:  J Control Release       Date:  2007-11-17       Impact factor: 9.776

8.  Water-insoluble silk films with silk I structure.

Authors:  Qiang Lu; Xiao Hu; Xiaoqin Wang; Jonathan A Kluge; Shenzhou Lu; Peggy Cebe; David L Kaplan
Journal:  Acta Biomater       Date:  2009-10-27       Impact factor: 8.947

9.  Silk polymer-based adenosine release: therapeutic potential for epilepsy.

Authors:  Andrew Wilz; Eleanor M Pritchard; Tianfu Li; Jing-Quan Lan; David L Kaplan; Detlev Boison
Journal:  Biomaterials       Date:  2008-06-02       Impact factor: 12.479

10.  Fibroin/collagen hybrid hydrogels with crosslinking method: preparation, properties, and cytocompatibility.

Authors:  Qiang Lv; Kun Hu; Qingling Feng; Fuzhai Cui
Journal:  J Biomed Mater Res A       Date:  2008-01       Impact factor: 4.396

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  42 in total

1.  Synthesis and characterization of silk fibroin microparticles for intra-articular drug delivery.

Authors:  Timothy K Mwangi; Robby D Bowles; David M Tainter; Richard D Bell; David L Kaplan; Lori A Setton
Journal:  Int J Pharm       Date:  2015-02-24       Impact factor: 5.875

2.  Injectable silk-based biomaterials for cervical tissue augmentation: an in vitro study.

Authors:  Joseph E Brown; Benjamin P Partlow; Alison M Berman; Michael D House; David L Kaplan
Journal:  Am J Obstet Gynecol       Date:  2015-08-24       Impact factor: 8.661

3.  Coating Topologically Complex Electrospun Fibers with Nanothin Silk Fibroin Enhances Neurite Outgrowth in Vitro.

Authors:  Alexis M Ziemba; Tanner D Fink; Mary Clare Crochiere; Devan L Puhl; Samichya Sapkota; Ryan J Gilbert; R Helen Zha
Journal:  ACS Biomater Sci Eng       Date:  2020-02-17

4.  Deformable and conformal silk hydrogel inverse opal.

Authors:  Kyungtaek Min; Sookyoung Kim; Sunghwan Kim
Journal:  Proc Natl Acad Sci U S A       Date:  2017-05-30       Impact factor: 11.205

5.  A quicker degradation rate is yielded by a novel kind of transgenic silk fibroin consisting of shortened silk fibroin heavy chains fused with matrix metalloproteinase cleavage sites.

Authors:  Guoping Huang; Danfeng Yang; Chunfeng Sun; Jianping Huang; Keping Chen; Chunxia Zhang; Huiqing Chen; Qin Yao
Journal:  J Mater Sci Mater Med       Date:  2014-05-07       Impact factor: 3.896

6.  Silk Nanofiber Hydrogels with Tunable Modulus to Regulate Nerve Stem Cell Fate.

Authors:  ShuMeng Bai; WenMin Zhang; Qiang Lu; QuanHong Ma; David L Kaplan; HeSun Zhu
Journal:  J Mater Chem B       Date:  2014-10-14       Impact factor: 6.331

7.  Pluronic F127 blended polycaprolactone scaffolds via e-jetting for esophageal tissue engineering.

Authors:  Bin Wu; Nobuyoshi Takeshita; Yang Wu; Sanjairaj Vijayavenkataraman; Khek Yu Ho; Wen Feng Lu; Jerry Ying Hsi Fuh
Journal:  J Mater Sci Mater Med       Date:  2018-08-17       Impact factor: 3.896

8.  Self-Folding 3D Silk Biomaterial Rolls to Facilitate Axon and Bone Regeneration.

Authors:  Yimin Huang; Vincent Fitzpatrick; Nan Zheng; Ran Cheng; Heyu Huang; Chiara Ghezzi; David L Kaplan; Chen Yang
Journal:  Adv Healthc Mater       Date:  2020-08-31       Impact factor: 9.933

9.  Structure and biodegradation mechanism of milled Bombyx mori silk particles.

Authors:  Rangam Rajkhowa; Xiao Hu; Takuya Tsuzuki; David L Kaplan; Xungai Wang
Journal:  Biomacromolecules       Date:  2012-07-12       Impact factor: 6.988

10.  Nanoscale Control of Silks for Nanofibrous Scaffold Formation with Improved Porous Structure.

Authors:  Shasha Lin; Guozhong Lu; Shanshan Liu; Shumeng Bai; Xi Liu; Qiang Lu; Baoqi Zuo; David L Kaplan; Hesun Zhu
Journal:  J Mater Chem B       Date:  2014-05-07       Impact factor: 6.331

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