基于微生物合成和先进生物制造技术的三维分层纤维素结构

Shan Liu, Muxuan Yang and Weinan Xu*, 
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摘要

纤维素是世界上最丰富、最重要的生物聚合物,某些类型的细菌(如 Komagataeibacter xylinus)也能对其进行生物合成。然而,由于这种细菌纤维素(BC)的生物合成过程需要氧气,而且BC的结晶度高、加工性差,因此要制造出具有明确形状、几何形状和内部结构的三维BC结构非常具有挑战性。近年来,聚合物添加剂制造和生物制造技术的快速发展为制造分层三维纤维素结构提供了新的多功能方法。这可以通过在三维打印原料中加入生物碱来实现,更有趣的是,也可以通过在活墨中加入纤维素生成细菌,然后在原位进行生物碱生物合成来实现。在本《视角》中,我们认真研究了各种先进生物制造技术在制造分层三维纤维素结构方面的潜力,特别是那些基于增材制造与原位微生物生物合成相结合的技术。此外,还讨论了基于 BC 和微生物生物合成的可持续生物复合材料。重点介绍了微生物生物合成三维纤维素结构当前面临的挑战和未来的机遇。还讨论了它们在组织工程、药物输送、轻质复合材料、热管理和能量储存方面的应用。
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Three-Dimensional Hierarchical Cellulose Structures Based on Microbial Synthesis and Advanced Biofabrication

Cellulose is the most abundant and important biopolymer in our world, and it can also be biosynthesized by certain types of bacteria, such as Komagataeibacter xylinus. However, due to the requirement of oxygen access during such bacterial cellulose (BC) biosynthesis, as well as the high crystallinity and poor processability of BC, it is very challenging to fabricate 3D BC structures with well-defined shape, geometry, and internal structure. In recent years, the rapid progress of polymer additive manufacturing and biofabrication has provided new and versatile approaches for fabricating hierarchical 3D cellulose structures. This can be achieved by either incorporating BC in the 3D printing feedstock or, more interestingly, by incorporating cellulose-generating bacteria in a living ink followed by in situ BC biosynthesis. In this Perspective, we critically examine the potential of various advanced biofabrication technologies in fabricating hierarchical 3D cellulose structures, especially those based on integrating additive manufacturing with in situ microbial biosynthesis. Moreover, sustainable biocomposites based on BC and microbial biosynthesis are also discussed. The current challenges and future opportunities of microbial-biosynthesis-enabled 3D cellulose structures are highlighted. Their applications in tissue engineering, drug delivery, lightweight composites, thermal management, and energy storage are also discussed.

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