Effect of microcrystal cellulose and cellulose whisker on biocompatibility of cellulose-based electrospun scaffolds

被引:0
作者
Baoquan Jia
Yutao Li
Bin Yang
Di Xiao
Shengnan Zhang
A. Varada Rajulu
Tetsuo Kondo
Lina Zhang
Jinping Zhou
机构
[1] Wuhan University,Department of Chemistry
[2] Sri Krishnadevaraya University,Department of Polymer Science and Technology
[3] University of Melbourne,School of Land and Environment
[4] Kyushu University,Graduate School of Bioresource and Bioenvironmental Sciences
来源
Cellulose | 2013年 / 20卷
关键词
Microcrystal cellulose; Cellulose whisker; Biocomposite scaffold; Biocompatibility; Tissue engineering;
D O I
暂无
中图分类号
学科分类号
摘要
To investigate the potential application of microcrystal cellulose (MCC) and cellulose whisker (CW) in the electrospun vascular tissue scaffolds, cellulose acetate (CA) and cellulose composite scaffolds containing MCC and CW were electrospun from CA solutions and deacetylation. Structure and morphology of MCC, CW and the fibrous composite scaffolds were investigated using FT-IR, SEM, TEM and AFM. The wettability of the scaffolds was evaluated by water contact angle analysis. The effect of MCC and CW on the biocompatibility of the scaffolds for vascular smooth muscle cells (VSMC) was assayed by MTT test, fluorescent imaging and SEM. The biocomposite scaffolds displayed multi-scaled structure and morphology. The scaffolds containing MCC and CW simultaneously exhibited significantly higher cell viability compared to those with only MCC or CW and no filler. Cell viability and morphology within the scaffolds become better with increasing content of MCC and CW. The composite scaffolds with both micro- and nano-scale organization could mimic the native extracellular matrix more closely, and further produce synergistic enhancement on VSMC viability, adhesion and proliferation. This study provides the potential applications of renewable cellulose-based particulates in biomedical field.
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页码:1911 / 1923
页数:12
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