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原蛋白对齐调节 Ire1 对 RNA 底物识别的特异性。

Protomer alignment modulates specificity of RNA substrate recognition by Ire1.

机构信息

Department of Biochemistry and Biophysics, University of California San Francisco, San Francisco, United States.

Howard Hughes Medical Institute, San Francisco, United States.

出版信息

Elife. 2021 Apr 27;10:e67425. doi: 10.7554/eLife.67425.

Abstract

The unfolded protein response (UPR) maintains protein folding homeostasis in the endoplasmic reticulum (ER). In metazoan cells, the Ire1 branch of the UPR initiates two functional outputs-non-conventional mRNA splicing and selective mRNA decay (RIDD). By contrast, Ire1 orthologs from and are specialized for only splicing or RIDD, respectively. Previously, we showed that the functional specialization lies in Ire1's RNase activity, which is either stringently splice-site specific or promiscuous (Li et al., 2018). Here, we developed an assay that reports on Ire1's RNase promiscuity. We found that conversion of two amino acids within the RNase domain of Ire1 to their counterparts rendered it promiscuous. Using biochemical assays and computational modeling, we show that the mutations rewired a pair of salt bridges at Ire1 RNase domain's dimer interface, changing its protomer alignment. Thus, Ire1 protomer alignment affects its substrates specificity.

摘要

未折叠蛋白反应 (UPR) 在内质网 (ER) 中维持蛋白质折叠的动态平衡。在真核细胞中,UPR 的 Ire1 分支启动两种功能性输出——非传统的 mRNA 剪接和选择性的 mRNA 降解 (RIDD)。相比之下, 和 的 Ire1 同源物分别专门用于剪接或 RIDD。此前,我们表明功能专业化在于 Ire1 的核糖核酸酶活性,该活性要么严格特异性地针对剪接位点,要么具有混杂性(Li 等人,2018 年)。在这里,我们开发了一种报告 Ire1 核糖核酸酶混杂性的测定法。我们发现,将 RNase 结构域内的两个氨基酸转换为它们的 对应物,使其具有混杂性。通过生化测定和计算建模,我们表明突变重新布线了 Ire1 RNase 结构域二聚体界面上的一对盐桥,改变了其原聚体的排列。因此,Ire1 原聚体的排列会影响其底物的特异性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8469/8104961/da6a5fda09a8/elife-67425-fig1.jpg

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