Literature DB >> 24857500

Mechanically-reinforced electrospun composite silk fibroin nanofibers containing hydroxyapatite nanoparticles.

Hyunryung Kim1, Lihua Che2, Yoon Ha2, WonHyoung Ryu3.   

Abstract

Electrospun silk fibroin (SF) scaffolds provide large surface area, high porosity, and interconnection for cell adhesion and proliferation and they may replace collagen for many tissue engineering applications. Despite such advantages, electrospun SF scaffolds are still limited as bone tissue replacement due to their low mechanical strengths. While enhancement of mechanical strengths by incorporating inorganic ceramics into polymers has been demonstrated, electrospinning of a mixture of SF and inorganic ceramics such as hydroxyapatite is challenging and less studied due to the aggregation of ceramic particles within SF. In this study, we aimed to enhance the mechanical properties of electrospun SF scaffolds by uniformly dispersing hydroxyapatite (HAp) nanoparticles within SF nanofibers. HAp nanoaprticles were modified by γ-glycidoxypropyltrimethoxysilane (GPTMS) for uniform dispersion and enhanced interfacial bonding between HAp and SF fibers. Optimal conditions for electrospinning of SF and GPTMS-modified HAp nanoparticles were identified to achieve beadless nanofibers without any aggregation of HAp nanoparticles. The MTT and SEM analysis of the osteoblasts-cultured scaffolds confirmed the biocompatibility of the composite scaffolds. The mechanical properties of the composite scaffolds were analyzed by tensile tests for the scaffolds with varying contents of HAp within SF fibers. The mechanical testing showed the peak strengths at the HAp content of 20 wt.%. The increase of HAp content up to 20 wt.% increased the mechanical properties of the composite scaffolds, while further increase above 20 wt.% disrupted the polymer chain networks within SF nanofibers and weakened the mechanical strengths.
Copyright © 2014 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Composite scaffold; Electrospinning; Hydroxyapatite; Mechanical strength; Silk fibroin

Mesh:

Substances:

Year:  2014        PMID: 24857500     DOI: 10.1016/j.msec.2014.04.012

Source DB:  PubMed          Journal:  Mater Sci Eng C Mater Biol Appl        ISSN: 0928-4931            Impact factor:   7.328


  14 in total

1.  HRP-mediated graft polymerization of acrylic acid onto silk fibroins and in situ biomimetic mineralization.

Authors:  Buguang Zhou; Qian Zhou; Ping Wang; Jiugang Yuan; Yuanyuan Yu; Chao Deng; Qiang Wang; Xuerong Fan
Journal:  J Mater Sci Mater Med       Date:  2018-05-23       Impact factor: 3.896

Review 2.  Use of nanoparticles in skeletal tissue regeneration and engineering.

Authors:  Miriam Filippi; Gordian Born; Delphine Felder-Flesch; Arnaud Scherberich
Journal:  Histol Histopathol       Date:  2019-11-13       Impact factor: 2.303

3.  The polycaprolactone/silk fibroin/carbonate hydroxyapatite electrospun scaffold promotes bone reconstruction by regulating the polarization of macrophages.

Authors:  Xiaoshi Jia; Jing Zhou; Jinqiu Ning; Maoquan Li; Yitong Yao; Xiaodong Wang; Yutao Jian; Ke Zhao
Journal:  Regen Biomater       Date:  2022-06-11

Review 4.  Nanotechnology in bone tissue engineering.

Authors:  Graham G Walmsley; Adrian McArdle; Ruth Tevlin; Arash Momeni; David Atashroo; Michael S Hu; Abdullah H Feroze; Victor W Wong; Peter H Lorenz; Michael T Longaker; Derrick C Wan
Journal:  Nanomedicine       Date:  2015-03-16       Impact factor: 5.307

5.  Response of human mesenchymal stem cells to intrafibrillar nanohydroxyapatite content and extrafibrillar nanohydroxyapatite in biomimetic chitosan/silk fibroin/nanohydroxyapatite nanofibrous membrane scaffolds.

Authors:  Guo-Jyun Lai; K T Shalumon; Jyh-Ping Chen
Journal:  Int J Nanomedicine       Date:  2015-01-12

6.  Silk Fibroin-Alginate-Hydroxyapatite Composite Particles in Bone Tissue Engineering Applications In Vivo.

Authors:  You-Young Jo; Seong-Gon Kim; Kwang-Jun Kwon; HaeYong Kweon; Weon-Sik Chae; Won-Geun Yang; Eun-Young Lee; Hyun Seok
Journal:  Int J Mol Sci       Date:  2017-04-18       Impact factor: 5.923

7.  Accelerated mineralization on nanofibers via non-thermal atmospheric plasma assisted glutamic acid templated peptide conjugation.

Authors:  Günnur Onak; Ozan Karaman
Journal:  Regen Biomater       Date:  2019-04-22

8.  Random lasing from structurally-modulated silk fibroin nanofibers.

Authors:  Soocheol Kim; SungYeun Yang; Seung Ho Choi; Young L Kim; WonHyoung Ryu; Chulmin Joo
Journal:  Sci Rep       Date:  2017-07-03       Impact factor: 4.379

9.  Electrospun Fibers Immobilized with BMP-2 Mediated by Polydopamine Combined with Autogenous Tendon to Repair Developmental Dysplasia of the Hip in a Porcine Model.

Authors:  Ruiqi Wu; Guanying Gao; Yan Xu
Journal:  Int J Nanomedicine       Date:  2020-09-07

Review 10.  Nanoparticles in tissue engineering: applications, challenges and prospects.

Authors:  Anwarul Hasan; Mahboob Morshed; Adnan Memic; Shabir Hassan; Thomas J Webster; Hany El-Sayed Marei
Journal:  Int J Nanomedicine       Date:  2018-09-24
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