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如何改善用于生物医学应用的丝素蛋白材料的物理化学性质?——丝素蛋白的共混与交联综述

How to Improve Physico-Chemical Properties of Silk Fibroin Materials for Biomedical Applications?-Blending and Cross-Linking of Silk Fibroin-A Review.

作者信息

Grabska-Zielińska Sylwia, Sionkowska Alina

机构信息

Department of Physical Chemistry and Physicochemistry of Polymers, Faculty of Chemistry, Nicolaus Copernicus University in Toruń, 87-100 Toruń, Poland.

Department of Chemistry of Biomaterials and Cosmetics, Faculty of Chemistry, Nicolaus Copernicus University in Toruń, 87-100 Toruń, Poland.

出版信息

Materials (Basel). 2021 Mar 19;14(6):1510. doi: 10.3390/ma14061510.

Abstract

This review supplies a report on fresh advances in the field of silk fibroin (SF) biopolymer and its blends with biopolymers as new biomaterials. The review also includes a subsection about silk fibroin mixtures with synthetic polymers. Silk fibroin is commonly used to receive biomaterials. However, the materials based on pure polymer present low mechanical parameters, and high enzymatic degradation rate. These properties can be problematic for tissue engineering applications. An increased interest in two- and three-component mixtures and chemically cross-linked materials has been observed due to their improved physico-chemical properties. These materials can be attractive and desirable for both academic, and, industrial attention because they expose improvements in properties required in the biomedical field. The structure, forms, methods of preparation, and some physico-chemical properties of silk fibroin are discussed in this review. Detailed examples are also given from scientific reports and practical experiments. The most common biopolymers: collagen (Coll), chitosan (CTS), alginate (AL), and hyaluronic acid (HA) are discussed as components of silk fibroin-based mixtures. Examples of binary and ternary mixtures, composites with the addition of magnetic particles, hydroxyapatite or titanium dioxide are also included and given. Additionally, the advantages and disadvantages of chemical, physical, and enzymatic cross-linking were demonstrated.

摘要

本综述提供了关于丝素蛋白(SF)生物聚合物及其与生物聚合物共混物作为新型生物材料领域的最新进展报告。该综述还包括一个关于丝素蛋白与合成聚合物混合物的小节。丝素蛋白常用于制备生物材料。然而,基于纯聚合物的材料呈现出较低的力学参数和较高的酶降解速率。这些特性对于组织工程应用可能存在问题。由于其改善的物理化学性质,人们对二元和三元混合物以及化学交联材料的兴趣有所增加。这些材料对学术和工业关注都具有吸引力且令人期待,因为它们展现出了生物医学领域所需性能的提升。本综述讨论了丝素蛋白的结构、形态、制备方法以及一些物理化学性质。还从科学报告和实际实验中给出了详细示例。作为丝素蛋白基混合物的组分,讨论了最常见的生物聚合物:胶原蛋白(Coll)、壳聚糖(CTS)、藻酸盐(AL)和透明质酸(HA)。还包括并给出了二元和三元混合物、添加磁性颗粒、羟基磷灰石或二氧化钛的复合材料的示例。此外,还展示了化学、物理和酶交联的优缺点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9d05/8003607/ccbb54012f97/materials-14-01510-g001.jpg

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