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Interaction of antidiabetic α‐glucosidase inhibitors and gut bacteria α‐glucosidase

机译:抗糖尿病α-葡萄糖苷酶抑制剂与肠道细菌α-葡萄糖苷酶的相互作用

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摘要

Carbohydrate hydrolyzing α‐glucosidases are commonly found in microorganisms present in the human intestine microbiome. We have previously reported crystal structures of an α‐glucosidase from the human gut bacterium Blaubia (Ruminococcus) obeum (Ro‐αG1) and its substrate preference/specificity switch. This novel member of the GH31 family is a structural homolog of human intestinal maltase‐glucoamylase (MGAM) and sucrase–isomaltase (SI) with a highly conserved active site that is predicted to be common in Ro‐αG1 homologs among other species that colonize the human gut. In this report, we present structures of Ro‐αG1 in complex with the antidiabetic α‐glucosidase inhibitors voglibose, miglitol, and acarbose and supporting binding data. The in vitro binding of these antidiabetic drugs to Ro‐αG1 suggests the potential for unintended in vivo crossreaction of the α‐glucosidase inhibitors to bacterial α‐glucosidases that are present in gut microorganism communities. Moreover, analysis of these drug‐bound enzyme structures could benefit further antidiabetic drug development.
机译:碳水化合物水解α-葡萄糖苷酶通常存在于人肠微生物组中的微生物中。我们以前曾报道过来自人类肠道细菌BlackBerry(Ruminococcus)obeum(Ro-αG1)的α-葡萄糖苷酶的晶体结构及其底物偏好/特异性开关。 GH31家族的这一新成员是人肠麦芽糖酶-葡糖淀粉酶(MGAM)和蔗糖酶-异麦芽糖酶(SI)的结构同源物,具有高度保守的活性位点,预计在Ro-αG1同源物中常见于其他定居于该物种的物种。人类的内脏。在本报告中,我们介绍了与抗糖尿病α-葡萄糖苷酶抑制剂伏格列波糖,米格列醇和阿卡波糖复合的Ro-αG1的结构,并支持了结合数据。这些抗糖尿病药物与Ro-αG1的体外结合表明,α-葡萄糖苷酶抑制剂与肠道微生物群落中存在的细菌α-葡萄糖苷酶可能会发生意想不到的体内交叉反应。此外,对这些与药物结合的酶结构的分析可能有助于进一步开发抗糖尿病药物。

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