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ABCD4的跨膜螺旋6对于钴胺素运输不可或缺。

Transmembrane helix 6 of ABCD4 is indispensable for cobalamin transport.

作者信息

Imai Momoka, Kawaguchi Kosuke, Morita Masashi, Imanaka Tsuneo, So Takanori

机构信息

Laboratory of Molecular Cell Biology, Graduate School of Medicine and Pharmaceutical Sciences, University of Toyama, Toyama, Japan.

Faculty of Pharmaceutical Sciences, Hiroshima International University, Hiroshima, Japan.

出版信息

J Inherit Metab Dis. 2024 Mar;47(2):366-373. doi: 10.1002/jimd.12694. Epub 2023 Dec 9.

Abstract

ABCD4, which belongs to the ABC protein subfamily D, plays a role in the transport of cobalamin from lysosomes to the cytosol by cooperating with ATP-binding and ATP-hydrolysis. Pathogenic variants in the ABCD4 gene lead to an inherited metabolic disorder characterized by cobalamin deficiency. However, the structural requirements for cobalamin transport in ABCD4 remain unclear. In this study, six proteoliposomes were prepared, each containing a different chimeric ABCD4 protein, wherein each of the six transmembrane (TM) helices was replaced with the corresponding ABCD1. We analyzed the cobalamin transport activities of the ABCD mutants. In the proteoliposome with chimeric ABCD4 replacing TM helix 6, the cobalamin transport activity disappeared without a reduction in ATPase activity, indicating that TM helix 6 contributes to substrate recognition. Furthermore, the substitution of aspartic acid at position 329 or threonine at position 332 in TM helix 6 with the basic amino acid lysine led to a decrease in cobalamin-transport activity without causing a reduction in ATPase activity. The amino acids in TM helix 6 may be critically involved in substrate recognition; the charged state in the C-terminal half of TM helix 6 of ABCD4 is responsible for cobalamin transport activity.

摘要

ABCD4属于ABC蛋白D亚家族,通过与ATP结合和ATP水解协同作用,在钴胺素从溶酶体向细胞质的转运中发挥作用。ABCD4基因中的致病性变异会导致一种以钴胺素缺乏为特征的遗传性代谢紊乱。然而,ABCD4中钴胺素转运的结构要求仍不清楚。在本研究中,制备了六个蛋白脂质体,每个都含有不同的嵌合ABCD4蛋白,其中六个跨膜(TM)螺旋中的每一个都被相应的ABCD1取代。我们分析了ABCD突变体的钴胺素转运活性。在嵌合ABCD4取代TM螺旋6的蛋白脂质体中,钴胺素转运活性消失,而ATP酶活性没有降低,这表明TM螺旋6有助于底物识别。此外,用碱性氨基酸赖氨酸取代TM螺旋6中第329位的天冬氨酸或第332位的苏氨酸,导致钴胺素转运活性降低,而不会导致ATP酶活性降低。TM螺旋6中的氨基酸可能在底物识别中起关键作用;ABCD4的TM螺旋6 C端一半的带电状态负责钴胺素转运活性。

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