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ENGINEERING T1 LIPASE FOR DEGRADATION OF POLY-(R)-3-HYDROXYBUTYRATE

机译:工程T1脂酶用于降解聚-(R)-3-羟基丁酸酯

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Enzymes with broad substrate specificities that can act on a wide range of substrates would be valuable for industrial applications. T1 lipase is known to have broad substrate specificity in its native form, with active site residues that are similar to polyhydroxylalkanoate (PHA) depolymerase (PhaZ). PhaZ6 from Pseudomonas lemoignei (PhaZ6_(Pl)) is one of PhaZs that can degrade semicrystalline poly-(R)-3-hydroxybutyrate [P(3HB)]. The objective of this study is to enable T1 lipase to degrade semicrystalline P(3HB) similar to PhaZ6_(Pl) while maintaining its native function. Structural analyses on PhaZ6p/ built structure revealed that it does not contain a lid, as opposed to T1 lipase. Therefore, T1 lipase were designed by removing its lid region. This was performed by using Bacillus subtilis lipase A (BSLA) as the reference for T1 lipase modification as the latter does not have a lid region and that its structure fits almost perfectly with T1 lipase based on their superimposed structures. A total of three variants of T1 lipase without lid were successfully designed, namely D1 (without α6-loop-α7), D2 (without α6) and D3 (α6 and loop) in the lid region. All the variants showed PHA depolymerase activity towards P(3HB), with D2 variant exhibiting the highest activity amongst other variants. Further analysis on D2 showed that it was able to maintain its native hydrolytic activity towards olive oil, albeit with decrement in its catalytic efficiency. Results obtained in this study highlighted the fact that native T1 lipase is a versatile hydrolase enzyme which does not only perform triglyceride degradation but also P(3HB) degradation by simply removing the helix 6 which was specifically proven to affect catalytic activity and substrate specificity of the enzyme.
机译:可以作用于多种底物的具有广泛底物特异性的酶对于工业应用而言将是有价值的。已知T1脂肪酶以其天然形式具有广泛的底物特异性,其活性位点残基类似于聚羟基链烷酸酯(PHA)解聚酶(PhaZ)。来自勒莫氏假单胞菌的PhaZ6(PhaZ6_(Pl))是可以降解半结晶聚-(R)-3-羟基丁酸酯[P(3HB)]的PhaZ之一。这项研究的目的是使T1脂肪酶能够降解类似于PhaZ6_(Pl)的半结晶P(3HB),同时保持其天然功能。对PhaZ6p /构建结构的结构分析表明,与T1脂肪酶相反,它不包含盖子。因此,通过去除其盖区域来设计T1脂肪酶。这是通过使用枯草芽孢杆菌脂肪酶A(BSLA)作为T1脂肪酶修饰的参照来进行的,因为后者没有盖区,并且基于其重叠结构,其结构几乎与T1脂肪酶完全吻合。成功设计了总共三个不带盖的T1脂肪酶变体,即在盖区域中的D1(无α6-环-α7),D2(无α6)和D3(α6和环)。所有变体均显示出PHA对P(3HB)的解聚酶活性,其中D2变体在其他变体中表现出最高的活性。对D2的进一步分析表明,尽管其催化效率有所降低,但它仍能够保持其对橄榄油的天然水解活性。在这项研究中获得的结果突显了一个事实,即天然T1脂肪酶是一种多功能水解酶,它不仅可以通过简单地除去螺旋6来执行甘油三酸酯降解,而且还可以降解P(3HB),而螺旋6被特别证明会影响其催化活性和底物特异性。酶。

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