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用于生物医学应用的水凝胶多糖的3D打印:综述

3D Printing of Hydrogel Polysaccharides for Biomedical Applications: A Review.

作者信息

Aghajani Mohammad, Garshasbi Hamid Reza, Naghib Seyed Morteza, Mozafari M R

机构信息

Nanotechnology Department, School of Advanced Technologies, Iran University of Science and Technology (IUST), Tehran 1684613114, Iran.

Australasian Nanoscience and Nanotechnology Initiative (ANNI), Monash University LPO, Clayton, Melbourne, VIC 3168, Australia.

出版信息

Biomedicines. 2025 Mar 17;13(3):731. doi: 10.3390/biomedicines13030731.

Abstract

Additive manufacturing, also known as 3D printing, is becoming more and more popular because of its wide range of materials and flexibility in design. Layer by layer, 3D complex structures can be generated by the revolutionary computer-aided process known as 3D bioprinting. It is particularly crucial for youngsters and elderly patients and is a useful tool for tailored pharmaceutical therapy. A lot of research has been carried out recently on the use of polysaccharides as matrices for tissue engineering and medication delivery. Still, there is a great need to create affordable, sustainable bioink materials with high-quality mechanical, viscoelastic, and thermal properties as well as biocompatibility and biodegradability. The primary biological substances (biopolymers) chosen for the bioink formulation are proteins and polysaccharides, among the several resources utilized for the creation of such structures. These naturally occurring biomaterials give macromolecular structure and mechanical qualities (biomimicry), are generally compatible with tissues and cells (biocompatibility), and are harmonious with biological digesting processes (biodegradability). However, the primary difficulty with the cell-laden printing technique (bioprinting) is the rheological characteristics of these natural-based bioinks. Polysaccharides are widely used because they are abundant and reasonably priced natural polymers. Additionally, they serve as excipients in formulations for pharmaceuticals, nutraceuticals, and cosmetics. The remarkable benefits of biological polysaccharides-biocompatibility, biodegradability, safety, non-immunogenicity, and absence of secondary pollution-make them ideal 3D printing substrates. The purpose of this publication is to examine recent developments and challenges related to the 3D printing of stimuli-responsive polysaccharides for site-specific medication administration and tissue engineering.

摘要

增材制造,也称为3D打印,因其材料种类繁多且设计灵活而越来越受欢迎。通过一种名为3D生物打印的革命性计算机辅助工艺,可以逐层生成3D复杂结构。这对青少年和老年患者尤为重要,并且是定制药物治疗的有用工具。最近,人们对使用多糖作为组织工程和药物递送的基质进行了大量研究。然而,仍然非常需要制造出价格合理、可持续的生物墨水材料,这些材料要具有高质量的机械性能、粘弹性和热性能,以及生物相容性和生物降解性。在用于创建此类结构的多种资源中,用于生物墨水配方的主要生物物质(生物聚合物)是蛋白质和多糖。这些天然存在的生物材料赋予大分子结构和机械性能(仿生),通常与组织和细胞相容(生物相容性),并且与生物消化过程相协调(生物降解性)。然而,载细胞打印技术(生物打印)的主要困难在于这些基于天然的生物墨水的流变特性。多糖被广泛使用,因为它们是丰富且价格合理的天然聚合物。此外,它们还用作药物、营养保健品和化妆品配方中的辅料。生物多糖的显著优点——生物相容性、生物降解性、安全性、非免疫原性和无二次污染——使其成为理想的3D打印基材。本出版物的目的是研究与用于特定部位药物给药和组织工程的刺激响应性多糖的3D打印相关的最新进展和挑战。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e31b/11940176/19df4affe528/biomedicines-13-00731-g001.jpg

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