用于肝脏组织工程的三维生物打印和生物材料的创新:为组织工程肝脏铺平道路

Qi Wang , Yutian Feng , Anqi Wang , Yuelei Hu , Yannan Cao , Jingjing Zheng , Yinpeng Le , Juan Liu
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引用次数: 0

摘要

肝脏是维持体内平衡的关键器官,积极参与多种生理过程。肝脏组织工程(LTE)通过构建体外仿生肝脏模型,成为疾病研究、药物筛选和细胞替代疗法的平台。三维生物打印技术可用于组织工程,利用精心挑选的功能性生物材料创造出近似真实组织的微环境。理想的功能性生物材料具有高生物相容性、机械强度、柔韧性、可加工性和可调降解性等特点。生物材料可分为天然生物材料和合成生物材料,每种材料都有自己的优势和局限性,它们的组合是三维生物打印材料的主要来源。值得注意的是,肝脏脱细胞细胞外基质(decellularized extracellular matrix,dECM)是通过去除组织中的细胞成分获得的,具有生物活性、生物相容性和非免疫原性等特点,因此成为功能性生物材料的常见选择。此外,生物材料的交联会对打印结构的机械强度、理化性质和细胞行为产生重大影响。本综述介绍了目前在 LTE 中使用生物材料的情况,重点关注天然和合成生物材料以及交联方法的选择和应用。目的是通过全面介绍功能性生物材料,提高体外肝脏组织模型的保真度,从而为组织工程肝脏建立一个多功能平台。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Innovations in 3D bioprinting and biomaterials for liver tissue engineering: Paving the way for tissue-engineered liver

The liver is a pivotal organ that maintains internal homeostasis and actively participates in multiple physiological processes. Liver tissue engineering (LTE), by which in vitro biomimetic liver models are constructed, serves as a platform for disease research, drug screening, and cell replacement therapies. 3D bioprinting is used in tissue engineering to create microenvironments that closely mimic authentic tissues with carefully selected functional biomaterials. Ideal functional biomaterials exhibit characteristics such as high biocompatibility, mechanical strength, flexibility, processability, and tunable degradability. Biomaterials can be categorized into natural and synthetic biomaterials, each with its own advantages and limitations, and their combinations serve as a primary source of 3D bioprinting materials. It is noteworthy that the liver decellularized extracellular matrix (dECM), obtained by removing cellular components from tissues, possesses traits such as bioactivity, biocompatibility, and non-immunogenicity, making it a common choice among functional biomaterials. Furthermore, crosslinking of biomaterials significantly impacts the mechanical strength, physicochemical properties, and cellular behavior of the printed structures. This review covers the current utilization of biomaterials in LTE, focusing on natural and synthetic biomaterials as well as the selection and application of crosslinking methods. The aim is to enhance the fidelity of in vitro liver tissue models by providing a comprehensive coverage of functional biomaterials, thereby establishing a versatile platform for tissue-engineered livers.

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