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1.清华大学生命科学学院,化学工程系,合成与系统生物学中心,北京 100084
2.西安交通大学生命科学与技术学院,生物医学信息工程教育部重点实验室,陕西 西安 710049
Received:19 March 2024,
Revised:2024-06-08,
Published:31 October 2024
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陈国强, 谭丹. 重编程微生物底盘用于PHA材料的定制化低成本生物合成[J]. 合成生物学, 2024, 5(5): 1211-1226
CHEN Guo-Qiang, TAN Dan. Reprogramming microbial chassis for low-cost bioprodcution of tailor-made polyhydroxyalkanoates[J]. Synthetic Biology Journal, 2024, 5(5): 1211-1226
陈国强, 谭丹. 重编程微生物底盘用于PHA材料的定制化低成本生物合成[J]. 合成生物学, 2024, 5(5): 1211-1226 DOI: 10.12211/2096-8280.2024-024.
CHEN Guo-Qiang, TAN Dan. Reprogramming microbial chassis for low-cost bioprodcution of tailor-made polyhydroxyalkanoates[J]. Synthetic Biology Journal, 2024, 5(5): 1211-1226 DOI: 10.12211/2096-8280.2024-024.
合成生物学为新材料合成提供了无限可能,将为材料学带来变革性影响。环境友好型材料聚羟基脂肪酸酯(PHA)作为合成生物学与材料学深度融合的产物,是微生物胞内合成一类线性高分子聚酯,被认为可部分替代传统化学塑料。PHA含有至少150种单体,其组成、结构及性能的多样性带来了广泛的应用前景,形成了PHA家族或组学。PHA在学术界和产业界已深入研究了30多年,其中个别PHA材料已实现了商业化生产。利用合成生物学和代谢工程重新编程高性能微生物底盘细胞,并控制不同前体底物比例,可实现具有不同结构和性能的PHA材料的定制化合成。下一代工业生物技术是基于嗜盐微生物的节能节水的连续无灭菌开放式工业发酵工艺,能大幅度降低生产成本,更推动了PHA材料的低成本规模化生产。本文就PHA家族的组成以及工程化微生物底盘利用下一代工业生物技术高效低成本地合成多样化的PHA材料方面的进展做一简要综述,将重点介绍PHA家族的单体组成、材料性能和包含塑料、医用、能源、智能材料等领域的PHA应用价值链,以及重编程的假单胞菌和嗜盐单胞菌在PHA定制化低成本合成中的一些工程化技术和成果、产业化应用情况,并针对如何进一步降低生产成本及提高材料性能进行探讨。本文对基于合成生物学的生物材料定制化合成研究有重要参考价值。
Synthetic biology offers boundless possibilities and revolutionary changes to material fields. One remarkable outcome of interdisciplinary integration of synthetic biology and material science is the development of environmentally friendly polyhydroxyalkanoates (PHAs)
which serve as ideal alternatives to petroleum-based plastics. PHAs are a family of linear biopolyesters synthesized by various microorganisms as their intracellular storage materials for energy and carbon sources. With at least 150 various monomers
PHAs exhibit diverse structures
material properties
and applications
collectively known as “PHAomics”. When reprograming microbial genomes
via
synthetic biology and metabolic engineering
in combination with the feeding of special precursors
tailor-made PHAs with defined structures and varied properties can be synthesized. PHAs has been extensively studied in both academia and industry in the last few decades
leading to the commercialization of some PHAs. Next generation industrial biotechnology (NGIB) based on halophilic
Halomonas
spp. as chassis has been developed to overcome the limitations of current industrial biotechnology. NGIB offers a long lasting
open and continuous
energy and freshwater-saving bioprocess using low-cost mixed substrates and allows morphology engineering for simplified downstream processing. NGIB facilitates low-cost production of various PHAs in large scale. This review introduces PHAomics and summarizes the diverse properties of PHAs produced
via
NGIB. It primarily focuses on the composition
structure
and material properties of PHAs
as well as their extensive applications in biodegradable plastics
medical implants
medicine
drug delivery carriers
energy sources
and potential smart materials. Additionally
it covers the strategies and tools for strain engineering and their achievements in the tailor-made biosynthesis of PHA using reprogrammed
Pseudomonas
spp. and
Halomonas
spp. Finally
this review discusses strategies on how to further reduce the production cost and improve material properties of PHAs. This review summarizes the progresses on the low-cost customized synthesis of PHA biomaterials by synthetic biology
demonstrating the integration of biology and chemistry.
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