Division of Biotechnology and Macromolecular Chemistry, Graduate School of Engineering, Hokkaido University, N13W8, Kitaku, Sapporo, 060-8628, Japan.
Appl Microbiol Biotechnol. 2013 Sep;97(18):8011-21. doi: 10.1007/s00253-013-5120-6. Epub 2013 Aug 17.
2-Hydroxyalkanoates (2HAs) have become the new monomeric constituents of bacterial polyhydroxyalkanoates (PHAs). PHAs containing 2HA monomers, lactate (LA), glycolate (GL), and 2-hydroxybutyrate (2HB) can be synthesized by engineered microbes in which the broad substrate specificities of PHA synthase and propionyl-CoA transferase are critical factors for the incorporation of the monomers into the polymer chain. LA-based polymers, such as P[LA-co-3-hydroxybutyrate (3HB)], have the properties of pliability and stretchiness which are distinctly different from those of the rigid poly(lactic acid) (PLA) and P(3HB) homopolymers. This versatile platform is also applicable to the biosynthesis of GL- and 2HB-based polymers. In the case of the synthesis of 2HB-based polymers, the enantiospecificity of PHA synthase enabled the production of isotactic (R)-2HB-based polymers, including P[(R)-2HB], from racemic precursors of 2HB. P(2HB) is a pliable material, in contrast to PLA. Furthermore, to obtain a new 2HA-polymerizing PHA synthase, the class I PHA synthase from Ralstonia eutropha was engineered so as to achieve the first incorporation of LA units. The analysis of the polymer synthesized using this new LA-polymerizing PHA synthase unexpectedly focused a spotlight on the studies on block copolymer biosynthesis.
2- 羟基烷酸酯 (2HAs) 已成为细菌聚羟基烷酸酯 (PHAs) 的新型单体成分。含有 2HA 单体乳酸 (LA)、乙醇酸 (GL) 和 2-羟丁酸 (2HB) 的 PHAs 可以通过工程微生物合成,其中 PHA 合酶和丙酰 CoA 转移酶的广泛底物特异性是将单体掺入聚合物链中的关键因素。基于 LA 的聚合物,如 P[LA-co-3-羟丁酸 (3HB)],具有柔韧性和拉伸性,与刚性聚乳酸 (PLA) 和 P(3HB) 均聚物的性质明显不同。这个多功能平台也适用于 GL 和 2HB 基聚合物的生物合成。在合成 2HB 基聚合物的情况下,PHA 合酶的对映体选择性使能够从 2HB 的外消旋前体生产出包括 P[(R)-2HB]在内的等规 (R)-2HB 基聚合物。P(2HB) 是一种柔韧性材料,与 PLA 形成对比。此外,为了获得新的 2HA 聚合 PHA 合酶,对来自 Ralstonia eutropha 的 I 类 PHA 合酶进行了工程改造,从而首次实现了 LA 单元的掺入。使用这种新的 LA 聚合 PHA 合酶合成的聚合物的分析出人意料地聚焦于嵌段共聚物生物合成的研究。