Literature DB >> 18387349

Bone tissue engineering with premineralized silk scaffolds.

Hyeon Joo Kim1, Ung-Jin Kim, Hyun Suk Kim, Chunmei Li, Masahisa Wada, Gary G Leisk, David L Kaplan.   

Abstract

Silk fibroin biomaterials are being explored as novel protein-based systems for cell and tissue culture. In the present study, biomimetic growth of calcium phosphate on porous silk fibroin polymeric scaffolds was explored to generate organic/inorganic composites as scaffolds for bone tissue engineering. Aqueous-derived silk fibroin scaffolds were prepared with the addition of polyaspartic acid during processing, followed by the controlled deposition of calcium phosphate by exposure to CaCl(2) and Na(2)HPO(4). These mineralized protein-composite scaffolds were subsequently seeded with human bone marrow stem cells (hMSC) and cultured in vitro for 6 weeks under osteogenic conditions with or without BMP-2. The extent of osteoconductivity was assessed by cell numbers, alkaline phosphatase and calcium deposition, along with immunohistochemistry for bone-related outcomes. The results suggest increased osteoconductive outcomes with an increase in initial content of apatite and BMP-2 in the silk fibroin porous scaffolds. The premineralization of these highly porous silk fibroin protein scaffolds provided enhanced outcomes for the bone tissue engineering.

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Year:  2008        PMID: 18387349      PMCID: PMC2698959          DOI: 10.1016/j.bone.2008.02.007

Source DB:  PubMed          Journal:  Bone        ISSN: 1873-2763            Impact factor:   4.398


  46 in total

1.  Biocompatibility of anionic collagen matrix as scaffold for bone healing.

Authors:  Lenaldo B Rocha; Gilberto Goissis; Marcos A Rossi
Journal:  Biomaterials       Date:  2002-01       Impact factor: 12.479

2.  Interactions between acidic proteins and crystals: stereochemical requirements in biomineralization.

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Journal:  Proc Natl Acad Sci U S A       Date:  1985-06       Impact factor: 11.205

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Authors:  A A Driessen; C P Klein; K de Groot
Journal:  Biomaterials       Date:  1982-04       Impact factor: 12.479

6.  Fabrication of biodegradable polymer foams for cell transplantation and tissue engineering.

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Journal:  Methods Mol Med       Date:  1999

Review 7.  Silk-based biomaterials.

Authors:  Gregory H Altman; Frank Diaz; Caroline Jakuba; Tara Calabro; Rebecca L Horan; Jingsong Chen; Helen Lu; John Richmond; David L Kaplan
Journal:  Biomaterials       Date:  2003-02       Impact factor: 12.479

8.  In vitro cartilage tissue engineering with 3D porous aqueous-derived silk scaffolds and mesenchymal stem cells.

Authors:  Yongzhong Wang; Ung-Jin Kim; Dominick J Blasioli; Hyeon-Joo Kim; David L Kaplan
Journal:  Biomaterials       Date:  2005-12       Impact factor: 12.479

9.  Osteoblast responses to orthopedic implant materials in vitro.

Authors:  D A Puleo; L A Holleran; R H Doremus; R Bizios
Journal:  J Biomed Mater Res       Date:  1991-06

10.  Osteoblast growth and function in porous poly epsilon -caprolactone matrices for bone repair: a preliminary study.

Authors:  G Ciapetti; L Ambrosio; L Savarino; D Granchi; E Cenni; N Baldini; S Pagani; S Guizzardi; F Causa; A Giunti
Journal:  Biomaterials       Date:  2003-09       Impact factor: 12.479

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  59 in total

1.  Tissue response and biodegradation of composite scaffolds prepared from Thai silk fibroin, gelatin and hydroxyapatite.

Authors:  Hathairat Tungtasana; Somruetai Shuangshoti; Shanop Shuangshoti; Sorada Kanokpanont; David L Kaplan; Tanom Bunaprasert; Siriporn Damrongsakkul
Journal:  J Mater Sci Mater Med       Date:  2010-10-07       Impact factor: 3.896

2.  Materials fabrication from Bombyx mori silk fibroin.

Authors:  Danielle N Rockwood; Rucsanda C Preda; Tuna Yücel; Xiaoqin Wang; Michael L Lovett; David L Kaplan
Journal:  Nat Protoc       Date:  2011-09-22       Impact factor: 13.491

Review 3.  Silk scaffolds for musculoskeletal tissue engineering.

Authors:  Danyu Yao; Haifeng Liu; Yubo Fan
Journal:  Exp Biol Med (Maywood)       Date:  2015-10-06

4.  Silk-Its Mysteries, How It Is Made, and How It Is Used.

Authors:  Davoud Ebrahimi; Olena Tokareva; Nae Gyune Rim; Joyce Y Wong; David L Kaplan; Markus J Buehler
Journal:  ACS Biomater Sci Eng       Date:  2015-08-24

5.  Silk-silica composites from genetically engineered chimeric proteins: materials properties correlate with silica condensation rate and colloidal stability of the proteins in aqueous solution.

Authors:  David J Belton; Aneta J Mieszawska; Heather A Currie; David L Kaplan; Carole C Perry
Journal:  Langmuir       Date:  2012-02-22       Impact factor: 3.882

6.  Critical-size calvarial bone defects healing in a mouse model with silk scaffolds and SATB2-modified iPSCs.

Authors:  Jin-Hai Ye; Yuan-Jin Xu; Jun Gao; Shi-Guo Yan; Jun Zhao; Qisheng Tu; Jin Zhang; Xue-Jing Duan; Cesar A Sommer; Gustavo Mostoslavsky; David L Kaplan; Yu-Nong Wu; Chen-Ping Zhang; Lin Wang; Jake Chen
Journal:  Biomaterials       Date:  2011-04-13       Impact factor: 12.479

7.  Ice-Templated Protein Nanoridges Induce Bone Tissue Formation.

Authors:  Mingying Yang; Yajun Shuai; Kegan S Sunderland; Chuanbin Mao
Journal:  Adv Funct Mater       Date:  2017-10-05       Impact factor: 18.808

8.  Silk-fibrin/hyaluronic acid composite gels for nucleus pulposus tissue regeneration.

Authors:  Sang-Hyug Park; Hongsik Cho; Eun Seok Gil; Biman B Mandal; Byoung-Hyun Min; David L Kaplan
Journal:  Tissue Eng Part A       Date:  2011-08-23       Impact factor: 3.845

9.  The effect of sterilization on silk fibroin biomaterial properties.

Authors:  Jelena Rnjak-Kovacina; Teresa M DesRochers; Kelly A Burke; David L Kaplan
Journal:  Macromol Biosci       Date:  2015-03-11       Impact factor: 4.979

10.  The Use of Silk as a Scaffold for Mature, Sustainable Unilocular Adipose 3D Tissue Engineered Systems.

Authors:  Rosalyn D Abbott; Rebecca Y Wang; Michaela R Reagan; Ying Chen; Francis E Borowsky; Adam Zieba; Kacey G Marra; J Peter Rubin; Irene M Ghobrial; David L Kaplan
Journal:  Adv Healthc Mater       Date:  2016-05-19       Impact factor: 9.933

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