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果胶结构和交联方法对交联果胶纳米纤维性能的影响。

Effects of pectin structure and crosslinking method on the properties of crosslinked pectin nanofibers.

机构信息

Key Laboratory of UV-Emitting Materials and Technology (Northeast Normal University), Ministry of Education, Changchun, Jilin 130024, China; School of Life Sciences, Northeast Normal University, Changchun, Jilin 130024, China.

Key Laboratory of UV-Emitting Materials and Technology (Northeast Normal University), Ministry of Education, Changchun, Jilin 130024, China.

出版信息

Carbohydr Polym. 2017 Feb 10;157:766-774. doi: 10.1016/j.carbpol.2016.10.052. Epub 2016 Oct 18.

Abstract

We reported crosslinking of electrospun nanofibers of three representative pectins (high-methoxylated, low-methoxylated, low-methoxylated and amidated pectin) and characterization of the crosslinked nanofibers. One mono-crosslinking strategy and two dual-crosslinking strategies were developed. Mono-crosslinking is achieved using calcium ions (Ca) to crosslink carboxylate ions in galacturonic acid residues. Dual-crosslinking is achieved using covalent crosslinking reagents glutaraldehyde (GLU) or adipic acid dihydrazide (ADH) to further crosslink hydroxyl groups or carboxylate ions after Ca crosslinking. Mechanical tests and degradation experiments indicated pectin structure affected mechanical and degradation properties of Ca-crosslinked nanofibers remarkably. Subsequent GLU crosslinking improved their mechanical strength moderately but did not inhibit their degradation, while subsequent ADH crosslinking improved their mechanical strength and slowed down their degradation dramatically. Cell studies demonstrated that most crosslinked pectin nanofibers were of no obvious cytotoxicity, and both ADH crosslinking and high degree of methoxylation facilitated cell adhesion and proliferation on pectin nanofiber mats.

摘要

我们报道了三种代表性果胶(高甲氧基果胶、低甲氧基果胶、低甲氧基果胶和酰胺化果胶)的静电纺纳米纤维的交联以及交联纳米纤维的表征。开发了一种单交联策略和两种双交联策略。单交联是通过钙离子 (Ca) 交联半乳糖醛酸残基中的羧酸根离子来实现的。双交联是通过使用戊二醛 (GLU) 或己二酰肼 (ADH) 等共价交联试剂在 Ca 交联后进一步交联羟基或羧酸根离子来实现的。力学测试和降解实验表明,果胶结构显著影响 Ca 交联纳米纤维的力学性能和降解性能。随后的 GLU 交联适度提高了它们的机械强度,但没有抑制其降解,而随后的 ADH 交联显著提高了它们的机械强度并减缓了降解速度。细胞研究表明,大多数交联的果胶纳米纤维没有明显的细胞毒性,ADH 交联和高甲氧基化程度都有利于细胞在果胶纳米纤维垫上的黏附和增殖。

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