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组织工程和再生医学中的微制造技术进展。

Advances in microfabrication technologies in tissue engineering and regenerative medicine.

机构信息

Terasaki Institute for Biomedical Innovation (TIBI), Los Angeles, California, USA.

CICECO - Aveiro Institute of Materials, Department of Chemistry, University of Aveiro, Aveiro, Portugal.

出版信息

Artif Organs. 2022 Jul;46(7):E211-E243. doi: 10.1111/aor.14232. Epub 2022 Mar 29.

Abstract

BACKGROUND

Tissue engineering provides various strategies to fabricate an appropriate microenvironment to support the repair and regeneration of lost or damaged tissues. In this matter, several technologies have been implemented to construct close-to-native three-dimensional structures at numerous physiological scales, which are essential to confer the functional characteristics of living tissues.

METHODS

In this article, we review a variety of microfabrication technologies that are currently utilized for several tissue engineering applications, such as soft lithography, microneedles, templated and self-assembly of microstructures, microfluidics, fiber spinning, and bioprinting.

RESULTS

These technologies have considerably helped us to precisely manipulate cells or cellular constructs for the fabrication of biomimetic tissues and organs. Although currently available tissues still lack some crucial functionalities, including vascular networks, innervation, and lymphatic system, microfabrication strategies are being proposed to overcome these issues. Moreover, the microfabrication techniques that have progressed to the preclinical stage are also discussed.

CONCLUSIONS

This article aims to highlight the advantages and drawbacks of each technique and areas of further research for a more comprehensive and evolving understanding of microfabrication techniques in terms of tissue engineering and regenerative medicine applications.

摘要

背景

组织工程提供了各种策略来构建合适的微环境,以支持失去或受损组织的修复和再生。在这方面,已经实施了多种技术来构建接近自然的三维结构,在多个生理尺度上,这对于赋予活组织的功能特性至关重要。

方法

在本文中,我们回顾了目前用于各种组织工程应用的各种微制造技术,例如软光刻、微针、模板和微结构自组装、微流控、纤维纺丝和生物打印。

结果

这些技术极大地帮助我们精确地操纵细胞或细胞构建体,以制造仿生组织和器官。尽管目前可用的组织仍然缺乏一些关键功能,包括血管网络、神经支配和淋巴系统,但正在提出微制造策略来克服这些问题。此外,还讨论了已经进展到临床前阶段的微制造技术。

结论

本文旨在突出每种技术的优缺点,并讨论进一步研究的领域,以便更全面、更深入地了解组织工程和再生医学应用中微制造技术。

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