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双歧杆菌属益生菌 GH3β-葡萄糖苷酶的结构和生化特性研究。

Structural and biochemical characterization of a GH3 β-glucosidase from the probiotic bacteria Bifidobacterium adolescentis.

机构信息

Instituto de Física de São Carlos, Universidade de São Paulo, Av. Trabalhador Saocarlense, 400. Pq. Arnold Schmidt, São Carlos, SP 13566-590, Brazil.

Departamento de Bioquímica, Instituto de Química, Universidade de São Paulo, São Paulo, SP, Brazil.

出版信息

Biochimie. 2018 May;148:107-115. doi: 10.1016/j.biochi.2018.03.007. Epub 2018 Mar 16.

Abstract

Bifidobacterium is an important genus of probiotic bacteria colonizing the human gut. These bacteria can uptake oligosaccharides for the fermentative metabolism of hexoses and pentoses, producing lactate, acetate as well as short-chain fatty acids and propionate. These end-products are known to have important effects on human health. β-glucosidases (EC 3.2.1.21) are pivotal enzymes for the metabolism and homeostasis of Bifidobacterium, since they hydrolyze small and soluble saccharides, typically producing glucose. Here we describe the cloning, expression, biochemical characterization and the first X-ray structure of a GH3 β-glucosidase from the probiotic bacteria Bifidobacterium adolescentis (BaBgl3). The purified BaBgl3 showed a maximal activity at 45 °C and pH 6.5. Under the optimum conditions, BaBgl3 is highly active on 4-nitrophenyl-β-d-glucopyranoside (pNPG) and, at a lesser degree, on 4-nitrophenyl-β-d-xylopyranoside (pNPX, about 32% of the activity observed for pNPG). The 2.4 Å resolution crystal structure of BaBgl3 revealed a three-domain structure composed of a TIM barrel domain, which together with α/β sandwich domain accommodate the active site and a third C-terminal fibronectin type III (FnIII) domain with unknown function. Modeling of the substrate in the active site indicates that an aspartate interacts with the hydroxyl group of the C6 present in pNPG but absent in pNPX, which explains the substrate preference. Finally, the enzyme is significantly stabilized by glycerol and galactose, resulting in considerable increase in the enzyme activity and its lifetime. The structural and biochemical studies presented here provide a deeper understanding of the molecular mechanisms of complex carbohydrates degradation utilized by probiotic bacteria as well as for the development of new prebiotic oligosaccharides.

摘要

双歧杆菌是定植于人类肠道的重要益生菌属。这些细菌可以摄取低聚糖进行己糖和戊糖的发酵代谢,产生乳酸、乙酸以及短链脂肪酸和丙酸。这些终产物已知对人体健康有重要影响。β-葡萄糖苷酶(EC 3.2.1.21)是双歧杆菌代谢和内稳态的关键酶,因为它们水解小而可溶性的糖,通常产生葡萄糖。在这里,我们描述了益生菌双歧杆菌(Bifidobacterium adolescentis)(BaBgl3)的 GH3 β-葡萄糖苷酶的克隆、表达、生化特性和首次 X 射线结构。纯化的 BaBgl3 在 45°C 和 pH 6.5 时表现出最大活性。在最佳条件下,BaBgl3 对 4-硝基苯基-β-d-吡喃葡萄糖苷(pNPG)具有高活性,对 4-硝基苯基-β-d-木吡喃糖苷(pNPX)的活性较低(约为 pNPG 活性的 32%)。BaBgl3 的 2.4Å 分辨率晶体结构揭示了一个由 TIM 桶结构域组成的三结构域结构,该结构域与α/β 三明治结构域一起容纳活性位点和第三个 C 末端纤维连接蛋白 III(FnIII)结构域,其功能未知。在活性位点对底物的建模表明,天冬氨酸与 pNPG 中存在但 pNPX 中不存在的 C6 的羟基相互作用,这解释了底物偏好性。最后,甘油和半乳糖显著稳定了酶,导致酶活性及其半衰期显著增加。这里呈现的结构和生化研究为益生菌降解复杂碳水化合物的分子机制提供了更深入的了解,也为新的益生元低聚糖的开发提供了依据。

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