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利用化学“工具包”分析细胞质动力蛋白-1 AAA1 亚基上 ATP 抑制的结构机制

Analysis of the Structural Mechanism of ATP Inhibition at the AAA1 Subunit of Cytoplasmic Dynein-1 Using a Chemical "Toolkit".

机构信息

School of Pharmacy, Memorial University of Newfoundland, 300 Prince Philip Dr, St. John's, NL A1B 3V6, Canada.

出版信息

Int J Mol Sci. 2021 Jul 19;22(14):7704. doi: 10.3390/ijms22147704.

Abstract

Dynein is a ~1.2 MDa cytoskeletal motor protein that carries organelles via retrograde transport in eukaryotic cells. The motor protein belongs to the ATPase family of proteins associated with diverse cellular activities and plays a critical role in transporting cargoes to the minus end of the microtubules. The motor domain of dynein possesses a hexameric head, where ATP hydrolysis occurs. The presented work analyzes the structure-activity relationship (SAR) of dynapyrazole A and B, as well as ciliobrevin A and D, in their various protonated states and their 46 analogues for their binding in the AAA1 subunit, the leading ATP hydrolytic site of the motor domain. This study exploits in silico methods to look at the analogues' effects on the functionally essential subsites of the motor domain of dynein 1, since no similar experimental structural data are available. Ciliobrevin and its analogues bind to the ATP motifs of the AAA1, namely, the walker-A (W-A) or P-loop, the walker-B (W-B), and the sensor I and II. Ciliobrevin A shows a better binding affinity than its D analogue. Although the double bond in ciliobrevin A and D was expected to decrease the ligand potency, they show a better affinity to the AAA1 binding site than dynapyrazole A and B, lacking the bond. In addition, protonation of the nitrogen atom in ciliobrevin A and D, as well as dynapyrazole A and B, at the N9 site of ciliobrevin and the N7 of the latter increased their binding affinity. Exploring ciliobrevin A geometrical configuration suggests the isomer has a superior binding profile over the due to binding at the critical ATP motifs. Utilizing the refined structure of the motor domain obtained through protein conformational search in this study exhibits that Arg1852 of the yeast cytoplasmic dynein could involve in the "glutamate switch" mechanism in cytoplasmic dynein 1 in lieu of the conserved Asn in AAA+ protein family.

摘要

动力蛋白是一种~1.2 MDa 的细胞骨架马达蛋白,可在真核细胞中通过逆行运输携带细胞器。该马达蛋白属于与多种细胞活动相关的 ATP 酶家族蛋白,在将货物运输到微管的负端方面起着关键作用。动力蛋白的马达结构域具有六聚体头部,在该头部发生 ATP 水解。目前的工作分析了 dynapyrazole A 和 B 以及 ciliobrevin A 和 D 在各种质子化状态下的结构-活性关系(SAR),以及它们在马达结构域的 AAA1 亚基(领先的 ATP 水解位点)中的结合情况。该研究利用计算方法研究了类似物对动力蛋白 1 马达结构域的功能必需亚基的影响,因为没有类似的实验结构数据。Ciliobrevin 及其类似物结合到 AAA1 的 ATP 基序,即 Walker-A (W-A) 或 P-loop、Walker-B (W-B) 和传感器 I 和 II。Ciliobrevin A 显示出比其 D 类似物更好的结合亲和力。尽管 Ciliobrevin A 和 D 中的双键预计会降低配体效力,但它们对 AAA1 结合位点的亲和力优于缺乏该键的 dynapyrazole A 和 B。此外,Ciliobrevin A 和 D 中的氮原子以及 dynapyrazole A 和 B 中的 N9 位点质子化增加了它们的结合亲和力。探索 Ciliobrevin A 的几何构型表明,由于结合在关键的 ATP 基序上, 异构体具有比 异构体更好的结合特性。利用本研究中通过蛋白质构象搜索获得的马达结构域的精细结构表明,酵母细胞质动力蛋白的 Arg1852 可能涉及细胞质动力蛋白 1 中的“谷氨酸开关”机制,而不是 AAA+ 蛋白家族中的保守 Asn。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bbcb/8304172/76fe4ac16fd8/ijms-22-07704-g001.jpg

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