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本文引用的文献

1
Neolymphostin A Is a Covalent Phosphoinositide 3-Kinase (PI3K)/Mammalian Target of Rapamycin (mTOR) Dual Inhibitor That Employs an Unusual Electrophilic Vinylogous Ester.Neolymphostin A 是一种共价磷酸肌醇 3-激酶(PI3K)/哺乳动物雷帕霉素靶蛋白(mTOR)双重抑制剂,采用一种不寻常的亲电乙烯基酯。
J Med Chem. 2018 Dec 13;61(23):10463-10472. doi: 10.1021/acs.jmedchem.8b00975. Epub 2018 Nov 28.
2
Structural and mechanistic insights into the function of the unconventional class XIV myosin MyoA from .结构与机制视角下非常规 XIV 型肌球蛋白 MyoA 的功能研究。
Proc Natl Acad Sci U S A. 2018 Nov 6;115(45):E10548-E10555. doi: 10.1073/pnas.1811167115. Epub 2018 Oct 22.
3
Structural determinants of Rab11 activation by the guanine nucleotide exchange factor SH3BP5.SH3BP5 通过鸟苷酸交换因子激活 Rab11 的结构决定因素。
Nat Commun. 2018 Sep 14;9(1):3772. doi: 10.1038/s41467-018-06196-z.
4
Structural Basis for Regulation of Phosphoinositide Kinases and Their Involvement in Human Disease.结构基础调控磷酸肌醇激酶及其在人类疾病中的作用。
Mol Cell. 2018 Sep 6;71(5):653-673. doi: 10.1016/j.molcel.2018.08.005.
5
UCT943, a Next-Generation Plasmodium falciparum PI4K Inhibitor Preclinical Candidate for the Treatment of Malaria.UCT943,一种用于治疗疟疾的新一代恶性疟原虫 PI4K 抑制剂的临床前候选药物。
Antimicrob Agents Chemother. 2018 Aug 27;62(9). doi: 10.1128/AAC.00012-18. Print 2018 Sep.
6
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Proc Natl Acad Sci U S A. 2018 Apr 24;115(17):E3940-E3949. doi: 10.1073/pnas.1716109115. Epub 2018 Apr 9.
7
Molecular Mechanisms of Human Disease Mediated by Oncogenic and Primary Immunodeficiency Mutations in Class IA Phosphoinositide 3-Kinases.IA 类磷酸肌醇 3-激酶中致癌和原发性免疫缺陷突变介导的人类疾病的分子机制。
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8
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蛋白质-膜界面的动态结构生物学。

Dynamic structural biology at the protein membrane interface.

机构信息

From the Department of Biochemistry and Microbiology, University of Victoria, Victoria, British Columbia V8W 2Y2, Canada

出版信息

J Biol Chem. 2019 Mar 15;294(11):3872-3880. doi: 10.1074/jbc.AW118.003236. Epub 2019 Jan 28.

DOI:10.1074/jbc.AW118.003236
PMID:30692197
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6422078/
Abstract

Since I started doing scientific research, I've been fascinated by the interplay of protein structure and dynamics and how they together mediate protein function. A particular area of interest has been in understanding the mechanistic basis of how lipid-signaling enzymes function on membrane surfaces. In this award lecture article, I will describe my laboratory's studies on the structure and dynamics of lipid-signaling enzymes on membrane surfaces. This is important, as many lipid-signaling enzymes are regulated through dynamic regulatory mechanisms that control their enzymatic activity. This article will discuss my continued enthusiasm in using a synergistic application of hydrogen-deuterium exchange MS (HDX-MS) with other structural biology techniques to probe the mechanistic basis for how membrane-localized signaling enzymes are regulated and how these approaches can be used to understand how they are misregulated in disease. I will discuss specific examples of how we have used HDX-MS to study phosphoinositide kinases and the protein kinase Akt. An important focus will be on a description of how HDX-MS can be used as a powerful tool to optimize the design of constructs for X-ray crystallography and EM. The use of a diverse toolbox of biophysical methods has revealed novel insight into the complex and varied regulatory networks that control the function of lipid-signaling enzymes and enabled unique insight into the mechanics of membrane recruitment.

摘要

自从我开始从事科学研究以来,我一直着迷于蛋白质结构和动力学的相互作用以及它们如何共同介导蛋白质功能。一个特别感兴趣的领域是理解脂质信号酶在膜表面上发挥作用的机制基础。在这篇获奖演讲文章中,我将描述我实验室在膜表面上脂质信号酶的结构和动力学方面的研究。这很重要,因为许多脂质信号酶是通过动态调节机制来调节其酶活性的。本文将讨论我继续热衷于使用氢氘交换 MS(HDX-MS)与其他结构生物学技术的协同应用来探索膜定位信号酶如何受到调节的机制基础,以及这些方法如何用于了解它们在疾病中是如何失调的。我将讨论我们如何使用 HDX-MS 来研究磷酸肌醇激酶和蛋白激酶 Akt 的具体示例。一个重要的重点将是描述 HDX-MS 如何可用作优化 X 射线晶体学和 EM 构建体设计的强大工具。使用多种生物物理方法工具箱揭示了控制脂质信号酶功能的复杂和多样化调节网络的新见解,并使我们能够深入了解膜募集的力学。