一种武藏RNA结合蛋白识别RNA的机制

IF 2.7 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Current Research in Structural Biology Pub Date : 2022-01-01 DOI:10.1016/j.crstbi.2021.12.002
Jinan Wang , Lan Lan , Xiaoqing Wu , Liang Xu , Yinglong Miao
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引用次数: 13

摘要

武藏rna结合蛋白(rbp)调节靶mrna的翻译和维持细胞的干细胞性和肿瘤发生。Musashi-1 (MSI1),长期以来被认为是肠道和神经干细胞的标志物,最近在许多癌症中被发现过表达。它已成为治疗急性髓系白血病和卵巢癌、结直肠癌、膀胱癌等实体肿瘤的重要药物靶点。已报道的MSI1的结合靶点之一是Numb,它是Notch信号的负调节因子。然而,Numb RNA与MSI1结合的动力学机制仍然未知,这在很大程度上阻碍了针对这一关键相互作用的有效药物设计。在这里,我们使用稳健的高斯加速分子动力学(GaMD)方法进行了广泛的全原子微秒时间尺度模拟,成功捕获了Numb RNA从散装溶剂到MSI1蛋白靶点的多次自发和高度精确的结合。GaMD模拟显示,Numb RNA与MSI1的结合在很大程度上参与了RNA和蛋白质的诱导拟合。模拟还发现了RNA结合过程中重要的低能中间构象状态,其中Numb主要与MSI1的β2-β3环和C端相互作用。通过GaMD模拟获得的RNA结合机制理解有望促进针对MSI1和其他rbp的合理的基于结构的药物设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Mechanism of RNA recognition by a Musashi RNA-binding protein

The Musashi RNA-binding proteins (RBPs) regulate translation of target mRNAs and maintenance of cell stemness and tumorigenesis. Musashi-1 (MSI1), long considered as an intestinal and neural stem cell marker, has been more recently found to be over expressed in many cancers. It has served as an important drug target for treating acute myeloid leukemia and solid tumors such as ovarian, colorectal and bladder cancer. One of the reported binding targets of MSI1 is Numb, a negative regulator of the Notch signaling. However, the dynamic mechanism of Numb RNA binding to MSI1 remains unknown, largely hindering effective drug design targeting this critical interaction. Here, we have performed extensive all-atom microsecond-timescale simulations using a robust Gaussian accelerated molecular dynamics (GaMD) method, which successfully captured multiple times of spontaneous and highly accurate binding of the Numb RNA from bulk solvent to the MSI1 protein target site. GaMD simulations revealed that Numb RNA binding to MSI1 involved largely induced fit in both the RNA and protein. The simulations also identified important low-energy intermediate conformational states during RNA binding, in which Numb interacted mainly with the β2-β3 loop and C terminus of MSI1. The mechanistic understanding of RNA binding obtained from our GaMD simulations is expected to facilitate rational structure-based drug design targeting MSI1 and other RBPs.

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来源期刊
CiteScore
4.60
自引率
0.00%
发文量
33
审稿时长
104 days
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