Department of Chemistry, Structural Biology Laboratory, University of York, Heslington, York YO10 5DD, UK.
Department of Chemistry, Structural Biology Laboratory, University of York, Heslington, York YO10 5DD, UK; The Rosalind Franklin Institute, Harwell Campus, Didcot OX11 0FA, UK.
Structure. 2022 Oct 6;30(10):1443-1451.e5. doi: 10.1016/j.str.2022.07.001. Epub 2022 Jul 29.
Enzymatic hydrolysis of α-L-fucose from fucosylated glycoconjugates is consequential in bacterial infections and the neurodegenerative lysosomal storage disorder fucosidosis. Understanding human α-L-fucosidase catalysis, in an effort toward drug design, has been hindered by the absence of three-dimensional structural data for any animal fucosidase. Here, we have used cryoelectron microscopy (cryo-EM) to determine the structure of human lysosomal α-L-fucosidase (FucA1) in both an unliganded state and in complex with the inhibitor deoxyfuconojirimycin. These structures, determined at 2.49 Å resolution, reveal the homotetrameric structure of FucA1, the architecture of the catalytic center, and the location of both natural population variations and disease-causing mutations. Furthermore, this work has conclusively identified the hitherto contentious identity of the catalytic acid/base as aspartate-276, representing a shift from both the canonical glutamate acid/base residue and a previously proposed glutamate residue. These findings have furthered our understanding of how FucA1 functions in both health and disease.
α-L-岩藻糖从岩藻糖基化糖缀合物中的酶水解在细菌感染和神经退行性溶酶体贮积病岩藻糖血症中具有重要意义。为了进行药物设计,了解人α-L-岩藻糖苷酶的催化作用受到任何动物岩藻糖苷酶缺乏三维结构数据的阻碍。在这里,我们使用冷冻电子显微镜(cryo-EM)来确定无配体状态和与抑制剂脱氧氟康菌素复合物中人类溶酶体α-L-岩藻糖苷酶(FucA1)的结构。这些在 2.49Å分辨率下确定的结构揭示了 FucA1 的同源四聚体结构、催化中心的结构以及天然群体变异和致病突变的位置。此外,这项工作还确定了迄今为止有争议的催化酸碱的身份是天冬氨酸-276,这代表了从经典的谷氨酸酸碱残基和先前提出的谷氨酸残基的转变。这些发现进一步加深了我们对 FucA1 在健康和疾病中的功能的理解。