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热巴基斯坦芽胞杆菌普鲁兰酶 1 型(PulA)的结构与功能分析。

Structural and Functional Analysis of Pullulanase Type 1 (PulA) from Geobacillus thermopakistaniensis.

机构信息

National Center of Excellence in Molecular Biology, University of Punjab, Lahore, Pakistan.

Chinese Academy of Sciences, Beijing, China.

出版信息

Mol Biotechnol. 2020 Aug;62(8):370-379. doi: 10.1007/s12033-020-00255-x.

Abstract

Pullulanase type I (PulA) is a debranching enzyme that specifically cleaves α-1,6-glycosidic linkages in pullulan. Pullulan has not only diverse applications in food industry but also has immune-stimulatory effects on B and T cells, and found to enhance the production of various anti-inflammatory cytokines in human. Moreover, pullulan has been suggested as a possible anti-cancer drug delivery agent without adjuvant due to its unique structure. The process of pullulan degradation is unresolved due to imprecise pullulanase structural characteristics. Therefore, the present study aimed to understand the structural and functional characteristics of pullulanase enzyme from Geobacillus thermopakistaniensis MAS1 strain using various computational approaches. The physio-chemical topographies and secondary structure of GT_PulA were explored using ProPram, InterPro and SMART. Various tools like I-TASSER, ModRefiner, RAMPAGE, PROCHECK and MOE 2009.10 were used to construct and verify the 3D structural model. The structural elucidation confirmed the significant domains, i.e., CBM48, CBM2, and TIM barrel having catalytically active residues, and conserved region YNGWDP. CBM2 domain along with TIM barrel has a capacity to bind different ligands and proved favorable for multiple substrate catalyses. These structural properties can have a potential effect on enhancing enzymatic activity of GT_PulA enzyme.

摘要

普鲁兰酶 I 型(PulA)是一种特异性切割普鲁兰中α-1,6-糖苷键的支链酶。普鲁兰不仅在食品工业中有多种应用,而且对 B 和 T 细胞具有免疫刺激作用,并且被发现能增强人源各种抗炎细胞因子的产生。此外,由于其独特的结构,普鲁兰已被提议作为一种潜在的无佐剂抗癌药物递送剂。由于普鲁兰酶结构特征不精确,普鲁兰的降解过程仍未得到解决。因此,本研究旨在使用各种计算方法来了解来自 Geobacillus thermopakistaniensis MAS1 菌株的普鲁兰酶的结构和功能特征。使用 ProPram、InterPro 和 SMART 探索 GT_PulA 的物理化学形貌和二级结构。使用 I-TASSER、ModRefiner、RAMPAGE、PROCHECK 和 MOE 2009.10 等各种工具构建和验证 3D 结构模型。结构阐明证实了具有催化活性残基的重要结构域,即 CBM48、CBM2 和 TIM 桶,以及保守区域 YNGWDP。CBM2 结构域与 TIM 桶一起具有结合不同配体的能力,并有利于多种底物的催化。这些结构特性可能对增强 GT_PulA 酶的酶活性产生潜在影响。

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