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人 POFUT1 的结构、其在配体非依赖性致癌性 Notch 信号中的需求,以及 Dowling-Degos 突变的功能影响。

Structure of human POFUT1, its requirement in ligand-independent oncogenic Notch signaling, and functional effects of Dowling-Degos mutations.

机构信息

Department of Biological Chemistry and Molecular Pharmacology, Harvard Medical School, Boston, MA 02115, USA.

Department of Cancer Biology, Dana Farber Cancer Institute, Boston, MA 02215, USA.

出版信息

Glycobiology. 2017 Aug 1;27(8):777-786. doi: 10.1093/glycob/cwx020.

Abstract

Protein O-fucosyltransferase-1 (POFUT1), which transfers fucose residues to acceptor sites on serine and threonine residues of epidermal growth factor-like repeats of recipient proteins, is essential for Notch signal transduction in mammals. Here, we examine the consequences of POFUT1 loss on the oncogenic signaling associated with certain leukemia-associated mutations of human Notch1, report the structures of human POFUT1 in free and GDP-fucose bound states, and assess the effects of Dowling-Degos mutations on human POFUT1 function. CRISPR-mediated knockout of POFUT1 in U2OS cells suppresses both normal Notch1 signaling, and the ligand-independent signaling associated with leukemogenic mutations of Notch1. Normal and oncogenic signaling are rescued by wild-type POFUT1 but rescue is impaired by an active-site R240A mutation. The overall structure of the human enzyme closely resembles that of the Caenorhabditis elegans protein, with an overall backbone RMSD of 0.93 Å, despite primary sequence identity of only 39% in the mature protein. GDP-fucose binding to the human enzyme induces limited backbone conformational movement, though the side chains of R43 and D244 reorient to make direct contact with the fucose moiety in the complex. The reported Dowling-Degos mutations of POFUT1, except for M262T, fail to rescue Notch1 signaling efficiently in the CRISPR-engineered POFUT1-/- background. Together, these studies identify POFUT1 as a potential target for cancers driven by Notch1 mutations and provide a structural roadmap for its inhibition.

摘要

蛋白 O-岩藻糖基转移酶 1(POFUT1)可将岩藻糖残基转移到受体蛋白表皮生长因子样重复序列中天冬氨酸和苏氨酸残基的接受部位,是哺乳动物 Notch 信号转导所必需的。在这里,我们研究了 POFUT1 缺失对与人类 Notch1 某些白血病相关突变相关的致癌信号的影响,报告了游离态和 GDP-岩藻糖结合态人 POFUT1 的结构,并评估了 Dowling-Degos 突变对人 POFUT1 功能的影响。CRISPR 介导的 U2OS 细胞中 POFUT1 的敲除抑制了正常的 Notch1 信号转导以及与 Notch1 白血病相关突变相关的配体非依赖性信号转导。野生型 POFUT1 可挽救正常和致癌信号,但活性位点 R240A 突变会损害挽救作用。尽管成熟蛋白的整体序列同一性仅为 39%,但人类酶的总体结构与秀丽隐杆线虫蛋白非常相似,整体骨架 RMSD 为 0.93Å。GDP-岩藻糖与人类酶结合仅诱导有限的骨架构象运动,尽管 R43 和 D244 的侧链重新定向以与复合物中的岩藻糖部分直接接触。除了 M262T 之外,报告的 POFUT1 Dowling-Degos 突变在 CRISPR 工程化的 POFUT1-/-背景中不能有效地挽救 Notch1 信号。综上所述,这些研究将 POFUT1 确定为 Notch1 突变驱动的癌症的潜在靶点,并为其抑制提供了结构蓝图。

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