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口腔病原体福赛斯坦纳菌稳定、广谱多聚唾液酸酶的结构与功能特征。

Structural and functional characterisation of a stable, broad-specificity multimeric sialidase from the oral pathogen Tannerella forsythia.

机构信息

School of Clinical Dentistry, The University of Sheffield, 19 Claremont Crescent, Sheffield S10 2TA, U.K.

Ludger Ltd., Culham Science Centre, Oxfordshire OX14 3EB, U.K.

出版信息

Biochem J. 2022 Sep 16;479(17):1785-1806. doi: 10.1042/BCJ20220244.

Abstract

Sialidases are glycosyl hydrolase enzymes targeting the glycosidic bond between terminal sialic acids and underlying sugars. The NanH sialidase of Tannerella forsythia, one of the bacteria associated with severe periodontal disease plays a role in virulence. Here, we show that this broad-specificity enzyme (but higher affinity for α2,3 over α2,6 linked sialic acids) digests complex glycans but not those containing Neu5,9Ac. Furthermore, we show it to be a highly stable dimeric enzyme and present a thorough structural analysis of the native enzyme in its apo-form and in complex with a sialic acid analogue/ inhibitor (Oseltamivir). We also use non-catalytic (D237A) variant to characterise molecular interactions while in complex with the natural substrates 3- and 6-siallylactose. This dataset also reveals the NanH carbohydrate-binding module (CBM, CAZy CBM 93) has a novel fold made of antiparallel beta-strands. The catalytic domain structure contains novel features that include a non-prolyl cis-peptide and an uncommon arginine sidechain rotamer (R306) proximal to the active site. Via a mutagenesis programme, we identified key active site residues (D237, R212 and Y518) and probed the effects of mutation of residues in proximity to the glycosidic linkage within 2,3 and 2,6-linked substrates. These data revealed that mutagenesis of R306 and residues S235 and V236 adjacent to the acid-base catalyst D237 influence the linkage specificity preference of this bacterial sialidase, opening up possibilities for enzyme engineering for glycotechology applications and providing key structural information that for in silico design of specific inhibitors of this enzyme for the treatment of periodontitis.

摘要

唾液酸酶是一类靶向末端唾液酸和基底糖之间糖苷键的糖苷水解酶。与严重牙周病相关的细菌之一福赛斯坦纳氏菌(Tannerella forsythia)的 NanH 唾液酸酶在毒力中起作用。在这里,我们表明这种广谱特异性酶(但对α2,3 连接的唾液酸具有更高的亲和力,而不是α2,6 连接的唾液酸)消化复合糖,但不消化含有 Neu5,9Ac 的糖。此外,我们表明它是一种高度稳定的二聚体酶,并对天然酶的无配体形式及其与唾液酸类似物/抑制剂(奥司他韦)的复合物进行了全面的结构分析。我们还使用非催化(D237A)变体来描述分子相互作用,同时与天然底物 3-和 6-唾液乳糖复合物。该数据集还揭示了 NanH 碳水化合物结合模块(CAZy CBM 93)具有由反平行β-折叠组成的新型折叠。催化结构域结构包含新颖的特征,包括非脯氨酸顺式肽和活性位点附近不常见的精氨酸侧链旋转(R306)。通过突变计划,我们确定了关键的活性位点残基(D237、R212 和 Y518),并探测了突变临近糖苷键的残基对 2,3 和 2,6 连接的底物的影响。这些数据表明,R306 和 D237 相邻的酸碱催化剂附近的残基 S235 和 V236 的突变影响了这种细菌唾液酸酶的键特异性偏好,为糖基技术应用的酶工程开辟了可能性,并提供了关键的结构信息,可用于设计针对该酶的特异性抑制剂,以治疗牙周炎。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0eb0/9472817/b577403258f6/BCJ-479-1785-g0001.jpg

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