Structural Analysis of the Catalytic Mechanism and Substrate Specificity of Anabaena Alkaline Invertase InvA Reveals a Novel Glucosidase

Invertases catalyze the hydrolysis of sucrose to glucose and fructose, thereby playing a key role in primary metabolism and plant development. According to the optimum pH, invertases are classified into acid invertases (Ac-Invs) and alkaline/neutral invertases (A/N-Invs), which share no sequence hom...

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Veröffentlicht in:The Journal of biological chemistry 2016-12, Vol.291 (49), p.25667-25677
Hauptverfasser: Xie, Jin, 谢, 进, Cai, Kun, 蔡, 坤, Hu, Hai-Xi, 胡, 海汐, Jiang, Yong-Liang, 江, 永亮, Yang, Feng, 杨, 丰, Hu, Peng-Fei, 胡, 鹏飞, Cao, Dong-Dong, 曹, 冬冬, Li, Wei-Fang, 李, 卫芳, Chen, Yuxing, 陈, 宇星, Zhou, Cong-Zhao, 周, 丛照
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Sprache:eng
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Zusammenfassung:Invertases catalyze the hydrolysis of sucrose to glucose and fructose, thereby playing a key role in primary metabolism and plant development. According to the optimum pH, invertases are classified into acid invertases (Ac-Invs) and alkaline/neutral invertases (A/N-Invs), which share no sequence homology. Compared with Ac-Invs that have been extensively studied, the structure and catalytic mechanism of A/N-Invs remain unknown. Here we report the crystal structures of Anabaena alkaline invertase InvA, which was proposed to be the ancestor of modern plant A/N-Invs. These structures are the first in the GH100 family. InvA exists as a hexamer in both crystal and solution. Each subunit consists of an (α/α)6 barrel core structure in addition to an insertion of three helices. A couple of structures in complex with the substrate or products enabled us to assign the subsites −1 and +1 specifically binding glucose and fructose, respectively. Structural comparison combined with enzymatic assays indicated that Asp-188 and Glu-414 are putative catalytic residues. Further analysis of the substrate binding pocket demonstrated that InvA possesses a stringent substrate specificity toward the α1,2-glycosidic bond of sucrose. Together, we suggest that InvA and homologs represent a novel family of glucosidases.
ISSN:0021-9258
1083-351X
DOI:10.1074/jbc.M116.759290