类器官系统的生物工程方法

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2021-09-28 DOI:10.1111/boc.202000119
Jad Saleh, Barbara Mercier, Wang XI
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引用次数: 7

摘要

类器官已广泛应用于基础、仿生和治疗研究。这些多细胞系统是通过细胞自主自组织形成的,其中一组干细胞经历了体内样的增殖、分化和形态发生。它们还概括了一系列生理细胞组织、复杂性和功能,这些是使用不朽细胞系的传统生物模型系统无法触及的。然而,类器官的发育往往不容易控制,它们的形状和大小尚未完全生理。最近的研究表明,多种生物工程工具可以用来控制重要的内部和外部线索,这些线索决定了干细胞行为和基于干细胞的类器官发育。在本文中,我们介绍了类器官系统的发展现状及其潜力,以及阻碍其进一步应用于研究和临床领域的局限性。与传统的自主类器官系统相比,我们随后回顾了生物工程方法,这些方法提供了对类器官生长和发育的改进控制。我们专注于基因编辑工具,这些工具允许具有增强生理相关性的类器官系统的内置反应和表型程序。我们还强调了生物工程方法的进步,以修改细胞外部环境,产生理想的细胞成分,3D微结构和复杂的微流体系统。我们的结论是,采用多学科方法的新兴仿生方法可能在未来类器官系统的发展中占上风。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Bioengineering methods for organoid systems

Organoids have been widely used in fundamental, biomimetic, and therapeutic studies. These multicellular systems form via cell-autonomous self-organization where a cohort of stem cells undergoes in vivo-like proliferation, differentiation, and morphogenesis. They also recapitulate a series of physiological cell organization, complexity and functions that are untouchable by conventional bio-model systems using immortal cell lines. However, the development of organoids is often not easily controlled and their shape and size are yet fully physiological. Recent research has demonstrated that multiple bioengineering tools could be harnessed to control important internal and external cues that dictate stem cell behavior and stem-cell based organoid development. In this review, we introduce the current development of organoid systems and their potentials, as well as their limitations that impede their further utility in research and clinical fields. In comparison to conventional autonomous organoid system, we then review bioengineering approaches that offer improved control over organoid growth and development. We focus on the genetic editing tools that allow the program of build-in responses and phenotypes for organoid systems with enhanced physiological relevance. We also highlight the advances in bioengineering methods to modify cellular external milieus to generate desirable cell composition, 3D micro-architectures, and complex microfluidic systems. We conclude that the emerging biomimetic methods that employ multidisciplinary approaches could prevail in the future development of organoid systems.

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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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