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Metabolic engineering for the synthesis of polyesters: A 100-year journey from polyhydroxyalkanoates to non-natural microbial polyesters

羟基烷酸 聚酯纤维 生化工程 代谢工程 商品化学品 生物降解 天然聚合物 生物可分解塑胶 微生物 生物技术 工业微生物学 化学工业 化学 生物塑料 可生物降解聚合物 高分子科学 聚合物 共聚酯 聚羟基丁酸酯 有机化学 废物管理 生物 细菌 工程类 发酵 遗传学 催化作用
作者
So Young Choi,Mi Na Rhie,Hee Taek Kim,Jeong Chan Joo,In Jin Cho,Jina Son,Seo Young Jo,Yu Jung Sohn,Kei Anne Baritugo,Jiwon Pyo,Young Joon Lee,Sang Yup Lee,Si Jae Park
出处
期刊:Metabolic Engineering [Elsevier BV]
卷期号:58: 47-81 被引量:124
标识
DOI:10.1016/j.ymben.2019.05.009
摘要

As concerns increase regarding sustainable industries and environmental pollutions caused by the accumulation of non-degradable plastic wastes, bio-based polymers, particularly biodegradable plastics, have attracted considerable attention as potential candidates for solving these problems by substituting petroleum-based plastics. Among these candidates, polyhydroxyalkanoates (PHAs), natural polyesters that are synthesized and accumulated in a range of microorganisms, are considered as promising biopolymers since they have biocompatibility, biodegradability, and material properties similar to those of commodity plastics. Accordingly, substantial efforts have been made to gain a better understanding of mechanisms related to the biosynthesis and properties of PHAs and to develop natural and recombinant microorganisms that can efficiently produce PHAs comprising desired monomers with high titer and productivity for industrial applications. Recent advances in biotechnology, including those related to evolutionary engineering, synthetic biology, and systems biology, can provide efficient and effective tools and strategies that reduce time, labor, and costs to develop microbial platform strains that produce desired chemicals and materials. Adopting these technologies in a systematic manner has enabled microbial fermentative production of non-natural polyesters such as poly(lactate) [PLA], poly(lactate- co -glycolate) [PLGA], and even polyesters consisting of aromatic monomers from renewable biomass-derived carbohydrates, which can be widely used in current chemical industries. In this review, we present an overview of strain development for the production of various important natural PHAs, which will give the reader an insight into the recent advances and provide indicators for the future direction of engineering microorganisms as plastic cell factories. On the basis of our current understanding of PHA biosynthesis systems, we discuss recent advances in the approaches adopted for strain development in the production of non-natural polyesters, notably 2-hydroxycarboxylic acid-containing polymers, with particular reference to systems metabolic engineering strategies. • Systems metabolic engineering strategies for the production of PHAs and non-natural polyesters are discussed. • Production of various important PHAs over the past 100 years are summarized. • Production of non-natural polyesters are summarized. • Future directions for the cost-effective production of tailor-made PHAs and non-natural polyesters are discussed.
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