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可控且生物相容的微生物 3D 生物打印技术:基础、环境应用与挑战。

Controllable and biocompatible 3D bioprinting technology for microorganisms: Fundamental, environmental applications and challenges.

机构信息

School of Environmental Science and Engineering, Tianjin University, Tianjin 300350, China.

School of Environmental Science and Engineering, Tianjin University, Tianjin 300350, China.

出版信息

Biotechnol Adv. 2023 Dec;69:108243. doi: 10.1016/j.biotechadv.2023.108243. Epub 2023 Aug 28.

Abstract

3D bioprinting is a new 3D manufacturing technology, that can be used to accurately distribute and load microorganisms to form microbial active materials with multiple complex functions. Based on the 3D printing of human cells in tissue engineering, 3D bioprinting technology has been developed. Although 3D bioprinting technology is still immature, it shows great potential in the environmental field. Due to the precise programming control and multi-printing pathway, 3D bioprinting technology provides a high-throughput method based on micron-level patterning for a wide range of environmental microbiological engineering applications, which makes it an on-demand, multi-functional manufacturing technology. To date, 3D bioprinting technology has been employed in microbial fuel cells, biofilm material preparation, microbial catalysts and 4D bioprinting with time dimension functions. Nevertheless, current 3D bioprinting technology faces technical challenges in improving the mechanical properties of materials, developing specific bioinks to adapt to different strains, and exploring 4D bioprinting for intelligent applications. Hence, this review systematically analyzes the basic technical principles of 3D bioprinting, bioinks materials and their applications in the environmental field, and proposes the challenges and future prospects of 3D bioprinting in the environmental field. Combined with the current development of microbial enhancement technology in the environmental field, 3D bioprinting will be developed into an enabling platform for multifunctional microorganisms and facilitate greater control of in situ directional reactions.

摘要

3D 生物打印是一种新的 3D 制造技术,可用于精确分配和加载微生物,以形成具有多种复杂功能的微生物活性材料。基于组织工程中人类细胞的 3D 打印,开发了 3D 生物打印技术。尽管 3D 生物打印技术尚不成熟,但它在环境领域显示出巨大的潜力。由于精确的编程控制和多打印途径,3D 生物打印技术为广泛的环境微生物工程应用提供了基于微米级图案的高通量方法,使其成为一种按需、多功能的制造技术。迄今为止,3D 生物打印技术已应用于微生物燃料电池、生物膜材料制备、微生物催化剂和具有时间维度功能的 4D 生物打印。然而,当前的 3D 生物打印技术在提高材料的机械性能、开发适应不同菌株的特定生物墨水以及探索用于智能应用的 4D 生物打印方面面临技术挑战。因此,本综述系统地分析了 3D 生物打印的基本技术原理、生物墨水材料及其在环境领域的应用,并提出了 3D 生物打印在环境领域面临的挑战和未来前景。结合当前环境领域微生物强化技术的发展,3D 生物打印将被开发成为多功能微生物的使能平台,从而更有效地控制原位定向反应。

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