第七章。聚合物构建块的白色生物技术:提高生物基1,3-丙二醇生产的策略及其应用

N. Vivek, R. O. Rajesh, Tharangattumana Krishnan Godan, A. Pandey, P. Binod
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引用次数: 1

摘要

考虑到1,3-丙二醇(1,3- pdo,丙烷-1,3-二醇,三甲基乙二醇,1,3-二羟基丙烷)作为平台分子的重要性,以及其化学合成所需的化石衍生物的枯竭,甘油作为一种通用的可再生原料,成为1,3- pdo生产的关键推动者。近十年来,人们从基因工程和生物加工等方面对提高1,3- pdo的生产效价和产量进行了大量的研究。随后,1,3- pdo合成了聚对苯二甲酸三甲酯(PTT),它具有许多聚合物应用,并成为商业化的聚对苯二甲酸乙二醇酯(PET)和聚对苯二甲酸丁二酯(PBT)聚酯的竞争对手。本章设想了对遗传方面的调查全景,以改善1,3- pdo的生产。讨论了改进1,3- pdo合成聚氨酯和聚酯的方法。详细描述了由1,3- pdo产生基因组成的dha规律的遗传学,以及最近在基因工程策略方面的进展,以提高个体属对1,3-丙二醇的耐受性和生产滴度。重点介绍了1,3- pdo的应用,介绍了利用缩聚反应合成各种聚酯和聚氨酯材料的方法。因此,聚酯的合成和性质解释为未来的生物医学,制药和器官移植应用提供了有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
CHAPTER 7. White Biotechnology for Polymer Building Blocks: Strategies for Enhanced Production of Bio-based 1,3-Propanediol and Its Applications
Considering the importance of 1,3-propanediol (1,3-PDO, propane-1,3-diol, trimethylene glycol, 1,3-dihydroxypropane) as a platform molecule, as well as the exhaustion of fossil derivatives required for its chemical synthesis, glycerol, as a versatile and renewable feedstock, becomes a key enabler towards 1,3-PDO production. It has been a decade since major efforts were carried out in genetic engineering and bioprocessing aspects to improve the production titers and yield of 1,3-PDO. Subsequently, polytrimethylene terephthalate (PTT) was synthesized using 1,3-PDO, which has numerous polymer applications and became a competitor for commercialized polyethylene terephthalate (PET) and polybutylene terephthalate (PBT) polyesters. This chapter envisages a panorama of investigations on genetic aspects for improving the production of 1,3-PDO. Strategies to improve the synthesis of polyurethane and polyester from 1,3-PDO are also discussed. A detailed description of the genetics of dha regulan consisting of genes for 1,3-PDO production, along with the recent developments in genetic engineering strategies to improve the tolerance and production titers of 1,3-propanediol in individual genera, is explained. In focus with the applications of 1,3-PDO, the synthesis of various polyesters and polyurethane materials using polycondensation reactions is also described. Thus, the synthesis and properties of polyesters explained within offer valuable insights into future biomedical, pharmaceutical, and organ transplant applications.
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