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Engineered Humicola insolens cutinase for efficient cellulose acetate deacetylation

机译:工程化湿湿剂的Cutinase用于高效纤维素乙酸酯脱乙酰化

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Cutinases comprise a family of esterases with broad hydrolytic activity for chain and pendant ester groups. This work aimed to identify and improve an efficient cutinase for cellulose acetate (CA) deacetylation. The development of a mild method for CA fiber surface deacetylation will result in improved surface hydrophilicity and reactivity while, when combined with cellulases, a route to the full recycling of CA to acetate and glucose. In this study, the comparative CA deacetylation activity of four homologous wild-type (wt) fungal cutinases from Aspergillus oryzae (AoC), Thiellavia terrestris (TtC), Fusarium solani (FsC), and Humicola insolens (HiC) was determined by analysis of CA deacetylation kinetics. wt-HiC had the highest catalytic efficiency (approximate to 32 [cm(2) L-1](-1) h(-1)). Comparison of wt-cutinase catalytic constants revealed that differences in catalytic efficiency are primarily due to corresponding variations in corresponding substrate binding constants. Docking studies with model tetrameric substrates also revealed structural origins for differential substrate binding amongst these cutinases. Comparative docking studies of HiC point mutations led to the identification of two important rationales for engineering cutinases for CA deacetylation: (i) create a tight but not too closed binding groove, (ii) allow for hydrogen bonding in the extended region around the active site. Rationally designed HiC with amino acid substitutions I36S, predicted to hydrogen bond to CA, combined with F70A, predicted to remove steric constraints, showed a two-fold improvement in catalytic efficiency. Continued cutinase optimization guided by a detailed understanding of structure-activity relationships, as demonstrated here, will be an important tool to developing practical cutinases for commercial green chemistry technologies.
机译:Cutinases包含一种具有宽水解活性的酯酶,用于链和侧链酯基团。这种作品旨在鉴定和改善醋酸纤维素(CA)脱乙酰化的高效Culinase。用于Ca纤维表面脱乙酰化的温和方法的开发将导致表面亲水性和反应性改善,而当与纤维素酶结合时,将Ca的完全再循环到乙酸盐和葡萄糖的途径。在这项研究中,通过分析确定了来自Aspergillus Oryzae(AOC),硫伐肌肉(TTC),镰刀菌(TTC),镰刀菌(TTC),镰刀菌(TTC)和Humicola Insolens(HIC)的对比Ca脱乙酰化活性。 Ca脱乙酰化动力学。 WT-HIC具有最高的催化效率(近似为32 [cm(2)L-1]( - 1)H(-1))。 WT- cutinase催化常数的比较显示催化效率的差异主要是由于相应的基底结合常数的相应变化。用模型四聚体底物的对接研究还揭示了这些Cutinase之间的微分基质结合的结构起源。 HIC点突变的比较求助导致对Ca脱乙酰化的工程粘性酶的两个重要理论:(i)产生紧的但不太闭合的结合槽,(ii)允许在活性位点周围的延伸区域中氢键键合。通过氨基酸取代I36S理性设计的HIC预测到Ca的氢键,与F70a相结合预测以去除空间约束,催化效率的提高两倍。如这里所证明的,通过详细了解结构 - 活动关系的持续Cutinase优化将是开发商业绿色化学技术的实用皮切酶的重要工具。

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