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依列卡福托/ VX - 445介导的囊性纤维化跨膜传导调节因子(CFTR)相互作用组重塑揭示了由突变特异性翻译动力学驱动的差异校正。

Elexacaftor/VX-445-mediated CFTR interactome remodeling reveals differential correction driven by mutation-specific translational dynamics.

作者信息

Kim Minsoo, McDonald Eli Fritz, Sabusap Carleen Mae P, Timalsina Bibek, Joshi Disha, Hong Jeong S, Rab Andras, Sorscher Eric J, Plate Lars

机构信息

Department of Chemistry, Vanderbilt University, Nashville, TN, United States of America.

Program in Chemical and Physical Biology, Vanderbilt University, Nashville, TN, United States of America.

出版信息

bioRxiv. 2023 Feb 4:2023.02.04.527134. doi: 10.1101/2023.02.04.527134.

Abstract

Cystic fibrosis (CF) is one of the most prevalent lethal genetic diseases with over 2000 identified mutations in the cystic fibrosis transmembrane conductance regulator (CFTR) gene. Pharmacological chaperones such as Lumacaftor (VX-809), Tezacaftor (VX-661) and Elexacaftor (VX-445) treat mutation-induced defects by stabilizing CFTR and are called correctors. These correctors improve proper folding and thus facilitate processing and trafficking to increase the amount of functional CFTR on the cell surface. Yet, CFTR variants display differential responses to each corrector. Here, we report variants P67L and L206W respond similarly to VX-809 but divergently to VX-445 with P67L exhibiting little rescue when treated with VX-445. We investigate the underlying cellular mechanisms of how CFTR biogenesis is altered by correctors in these variants. Affinity purification-mass spectrometry (AP-MS) multiplexed with isobaric Tandem Mass Tags (TMT) was used to quantify CFTR protein-protein interaction changes between variants P67L and L206W. VX-445 facilitates unique proteostasis factor interactions especially in translation, folding, and degradation pathways in a CFTR variant-dependent manner. A number of these interacting proteins knocked down by siRNA, such as ribosomal subunit proteins, moderately rescued fully glycosylated P67L. Importantly, these knock-downs sensitize P67L to VX-445 and further enhance the correction of this variant. Our results provide a better understanding of VX-445 biological mechanism of action and reveal cellular targets that may sensitize unresponsive CFTR variants to known and available correctors.

摘要

囊性纤维化(CF)是最常见的致死性遗传疾病之一,囊性纤维化跨膜传导调节因子(CFTR)基因中已鉴定出2000多种突变。诸如鲁马卡托(VX-809)、替扎卡托(VX-661)和依列卡托(VX-445)等药物伴侣通过稳定CFTR来治疗突变引起的缺陷,被称为校正剂。这些校正剂可改善正确折叠,从而促进加工和运输,以增加细胞表面功能性CFTR的数量。然而,CFTR变体对每种校正剂表现出不同的反应。在这里,我们报告变体P67L和L206W对VX-809的反应相似,但对VX-445的反应不同,P67L在用VX-445处理时几乎没有挽救作用。我们研究了校正剂如何改变这些变体中CFTR生物合成的潜在细胞机制。结合等压串联质量标签(TMT)的亲和纯化-质谱(AP-MS)用于量化变体P67L和L206W之间CFTR蛋白质-蛋白质相互作用的变化。VX-445以CFTR变体依赖性方式促进独特的蛋白质稳态因子相互作用,尤其是在翻译、折叠和降解途径中。许多通过小干扰RNA(siRNA)敲低的这些相互作用蛋白,如核糖体亚基蛋白,适度挽救了完全糖基化的P67L。重要的是,这些敲低使P67L对VX-445敏感,并进一步增强了该变体的校正。我们的结果更好地理解了VX-445的生物学作用机制,并揭示了可能使无反应的CFTR变体对已知和可用校正剂敏感的细胞靶点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/edf1/9915750/671d609980da/nihpp-2023.02.04.527134v1-f0001.jpg

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