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工程改造家族 11 碳水化合物结合模块对支链多糖与直链多糖的亲和力。

Engineering the affinity of a family 11 carbohydrate binding module to improve binding of branched over unbranched polysaccharides.

机构信息

Departamento de Bioquímica e Imunologia, FMRP-USP, Universidade de São Paulo, Ribeirão Preto, SP, Brazil; Fundação Oswaldo Cruz, Fiocruz-Ceará, Fortaleza, CE, Brazil.

Fundação Oswaldo Cruz, Fiocruz-Ceará, Fortaleza, CE, Brazil.

出版信息

Int J Biol Macromol. 2018 Dec;120(Pt B):2509-2516. doi: 10.1016/j.ijbiomac.2018.09.022. Epub 2018 Sep 5.

Abstract

Carbohydrate binding modules (CBMs) are non-catalytic domains within larger multidomain polypeptides. The CelH from Ruminoclostridium (Clostridium) thermocellum contains a family 11 CBM (RtCBM11) with high binding affinity for the linear polysaccharide β-glucan, and low affinity for the branched xyloglucan. Screening a random RtCBM11 mutant phage library created by error prone PCR for xyloglucan binding identified RtCBM11 mutants with enhanced xyloglucan affinity. Subsequent recombination of the selected variants by site-directed mutagenesis generated the H102L/Y152F and Y46N/G52D/H102L/Y152F mutants. Fusion of the quadruple RtCBM11 mutant with the xyloglucanase from Aspergillus niveus increased the catalytic efficiency of the enzyme by 38%. Isothermal titration calorimetry demonstrated increased xyloglucan affinity for both mutants and reduced affinity for β-glucan in the H102L/Y152F mutant. Molecular dynamics simulations indicated that the increased xyloglucan specificity results both from formation of a xylosyl binding pocket in the carbohydrate binding cleft, and via modulation of a hydrogen bond network between the oligosaccharide ligand and the protein. These results explain the improved xyloglucan binding in the RtCBM11 H102L/Y152F mutant and advance the understanding of the structural determinants of CBMs binding that discriminate between branched and unbranched polysaccharides.

摘要

碳水化合物结合模块(CBMs)是较大的多结构域多肽内的非催化结构域。来自热纤维梭菌(梭菌属)的 CelH 包含一个具有高结合亲和力的家族 11 CBM(RtCBM11)线性多糖β-葡聚糖,以及对支链木聚糖的低亲和力。通过易错 PCR 随机创建的 RtCBM11 噬菌体文库筛选出具有增强木聚糖亲和力的 RtCBM11 突变体。随后通过定点诱变对所选变体进行重组,生成了 H102L/Y152F 和 Y46N/G52D/H102L/Y152F 突变体。将四重 RtCBM11 突变体与来自雪白根霉的木聚糖酶融合,使酶的催化效率提高了 38%。等温滴定量热法表明,两种突变体对木聚糖的亲和力均增强,而 H102L/Y152F 突变体对β-葡聚糖的亲和力降低。分子动力学模拟表明,木聚糖特异性的提高既源于碳水化合物结合凹槽中形成的木糖结合口袋,也源于寡糖配体与蛋白质之间氢键网络的调节。这些结果解释了 RtCBM11 H102L/Y152F 突变体中木聚糖结合的改善,并加深了对区分支链和无支链多糖的 CBM 结合结构决定因素的理解。

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