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The complex structure of bile salt hydrolase from Lactobacillus salivarius reveals the structural basis of substrate specificity

机译:唾液乳杆菌胆汁盐水解酶的复杂结构揭示了底物特异性的结构基础

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摘要

The gut bacterial bile salt hydrolase (BSH) plays a critical role in host lipid metabolism and energy harvest. Therefore, BSH is a promising microbiome target to develop new therapies to regulate obesity in humans and novel non-antibiotic growth promoters for food animals. We previously reported the 1.90 Å apo crystal structure of BSH from Lactobacillus salivarius (lsBSH). In this study, we soaked the lsBSH crystal with glycocholic acid (GCA), a substrate, and obtained a 2.10 Å structure containing complex of lsBSH bound to GCA and cholic acid (CA), a product. The substrate/product sits in the water-exposed cavity molded by Loops 2 and 3. While the glycine moiety of GCA is exposed into a highly polar pocket, the sterane core of GCA is stabilized by aromatic and hydrophobic interactions. Comparison of product binding with BSH from Clostridium perfringenes reveals a distinct orientation of the sterane core in the binding site. The stability of the substrate-lsBSH complex and the putative catalytic mechanism were explored with molecular dynamics simulations. Site-directed mutagenesis of lsBSH demonstrated that Cys2 and Asn171 are critical for enzymatic activity, while Tyr24, Phe65 and Gln257 contribute to the substrate specificity. Together, this study provides structural insights into BSH-substrate interaction, the mechanism of catalysis and substrate specificity, which facilitate rational design of BSH inhibitors.
机译:肠道细菌胆汁盐水解酶(BSH)在宿主脂质代谢和能量收集中起关键作用。因此,BSH是一种有前途的微生物组靶标,可用于开发调节人类肥胖的新疗法和食用动物的新型非抗生素生长促进剂。我们先前报道了唾液乳杆菌(lsBSH)的BSH的1.90Åapo晶体结构。在这项研究中,我们将lsBSH晶体用甘氨酸(GCA)浸泡,获得了一个2.10Å结构,其中包含与GCA和产物胆酸(CA)结合的lsBSH配合物。底物/产品位于回路2和3模制的暴露于水的腔中。虽然GCA的甘氨酸部分暴露在高极性的口袋中,但GCA的甾烷核心通过芳香和疏水相互作用而稳定。产品与产气荚膜梭状芽孢杆菌的BSH结合的比较表明,甾烷核心在结合位点的方向明显。通过分子动力学模拟研究了底物-lsBSH配合物的稳定性和推定的催化机理。 lsBSH的定点诱变表明,Cys2和Asn171对酶活性至关重要,而Tyr24,Phe65和Gln257有助于底物特异性。总之,本研究提供了有关BSH-底物相互作用,催化机理和底物特异性的结构见解,这有助于BSH抑制剂的合理设计。

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