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第二代功能化中链长度聚羟基烷酸酯:高价值生物塑料应用的大门。

Second-generation functionalized medium-chain-length polyhydroxyalkanoates: the gateway to high-value bioplastic applications.

机构信息

Microbial Biotechnology Department, BIOPOLIS SL, Valencia, Spain.

出版信息

Int Microbiol. 2013 Mar;16(1):1-15. doi: 10.2436/20.1501.01.175.

Abstract

Polyhydroxyalkanoates (PHAs) are biodegradable biocompatible polyesters, which accumulate as granules in the cytoplasm of many bacteria under unbalanced growth conditions. Medium-chain-length PHAs (mcl-PHAs), characterized by C6-C14 branched monomer chains and typically produced by Pseudomonas species, are promising thermoelastomers, as they can be further modified by introducing functional groups in the side chains. Functionalized PHAs are obtained either by feeding structurally related substrates processed through the beta-oxidation pathway, or using specific strains able to transform sugars or glycerol into unsaturated PHA by de novo fatty-acid biosynthesis. Functionalized mcl-PHAs provide modified mechanical and thermal properties, and consequently have new processing requirements and highly diverse potential applications in emergent fields such as biomedicine. However, process development and sample availability are limited due to the toxicity of some precursors and still low productivity, which hinder investigation. Conversely, improved mutant strains designed through systems biology approaches and cofeeding with low-cost substrates may contribute to the widespread application of these biopolymers. This review focuses on recent developments in the production of functionalized mcl-PHAs, placing particular emphasis on strain and bioprocess design for cost-effective production.

摘要

聚羟基烷酸酯(PHAs)是可生物降解的生物相容性聚酯,在不平衡生长条件下会在细菌细胞质中积累成颗粒。中链长度 PHAs(mcl-PHAs)的特点是 C6-C14 支链单体链,通常由假单胞菌属产生,是有前途的热弹性体,因为它们可以通过在侧链中引入官能团进一步进行修饰。官能化 PHAs 要么通过喂养通过β-氧化途径加工的结构相关的底物来获得,要么使用能够通过从头脂肪酸生物合成将糖或甘油转化为不饱和 PHA 的特定菌株来获得。官能化 mcl-PHAs 提供了改性的机械和热性能,因此具有新的加工要求和在新兴领域(如生物医学)中高度多样化的潜在应用。然而,由于一些前体的毒性和仍然较低的生产率,导致工艺开发和样品可用性受到限制,这阻碍了研究。相反,通过系统生物学方法设计的改良突变株和与低成本底物共喂养可能有助于这些生物聚合物的广泛应用。本文重点介绍了功能性 mcl-PHAs 的生产的最新进展,特别强调了用于经济高效生产的菌株和生物工艺设计。

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