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通过非水酶促反应制备乳糖修饰的纤维素膜及其作为细胞培养支架的生物功能特性。

Preparation of lactose-modified cellulose films by a nonaqueous enzymatic reaction and their biofunctional characteristics as a scaffold for cell culture.

作者信息

Esaki Kei, Yokota Shingo, Egusa Shizuka, Okutani Yuri, Ogawa Yukiko, Kitaoka Takuya, Goto Masahiro, Wariishi Hiroyuki

机构信息

Department of Forest and Forest Products Sciences, Graduate School of Bioresource and Bioenvironmental Sciences, Kyushu University, 6-10-1 Hakozaki, Higashi-ku, Fukuoka 812-8581, Japan.

出版信息

Biomacromolecules. 2009 May 11;10(5):1265-9. doi: 10.1021/bm900089j.

Abstract

Enzymatic glyco-modification of transparent cellulose films with lactose was achieved by nonaqueous biocatalysis, and rat hepatocyte attachment behavior to the lactose-modified cellulose films was investigated. Regenerated cellulose films were incubated with lactose using a surfactant-enveloped cellulase in lithium chloride/dimethylacetamide solvent at 37 degrees C for 24 h, and lactose molecules were successfully introduced to the cellulose films. The initial cell adhesion on the lactose-modified cellulose films was superior to the original cellulose film. In the absence of serum, hepatocytes were significantly attached only on the lactose-modified cellulose films. This process was markedly suppressed by the addition of free lactose as an inhibitor. These results suggest that such cell adhesion proceeded through a direct interaction between galactose residues on the cellulose films and asialoglycoprotein receptors on the rat liver cell surface. This novel approach for surface glyco-modification of a cellulose matrix and its biofunctional properties are expected to provide potential application as a bioactive scaffold for cell culture engineering.

摘要

通过非水生物催化实现了乳糖对透明纤维素膜的酶促糖基修饰,并研究了大鼠肝细胞对乳糖修饰纤维素膜的附着行为。将再生纤维素膜在37℃下于氯化锂/二甲基乙酰胺溶剂中使用表面活性剂包裹的纤维素酶与乳糖孵育24小时,乳糖分子成功引入到纤维素膜中。乳糖修饰纤维素膜上的初始细胞粘附优于原始纤维素膜。在无血清条件下,肝细胞仅显著附着于乳糖修饰纤维素膜上。加入游离乳糖作为抑制剂可显著抑制这一过程。这些结果表明,这种细胞粘附是通过纤维素膜上的半乳糖残基与大鼠肝细胞表面的去唾液酸糖蛋白受体之间的直接相互作用进行的。这种纤维素基质表面糖基修饰的新方法及其生物功能特性有望作为细胞培养工程的生物活性支架提供潜在应用。

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