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首页> 外文期刊>The Journal of Physiology >Positional effects of premature termination codons on the biochemical and biophysical properties of CFTR
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Positional effects of premature termination codons on the biochemical and biophysical properties of CFTR

机译:早期终止密码子对CFTR生物化学和生物物理性质的位置效应

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Key points Biochemical and biophysical characterizations of three nonsense mutations of cystic fibrosis transmembrane conductance regulator (CFTR) associated with a severe form of cystic fibrosis (CF) reveal the importance and heterogenous effects of the position of the premature termination codon (PTC) on the CFTR protein function. Electrophysiological studies of W1282X‐CFTR, whose PTC is closer to the C‐terminus of CFTR, suggest the presence of both C‐terminus truncated CFTR proteins that are poorly functional and read‐through, full‐length products. For G542X‐ and E60X‐CFTR, the only mechanism capable of generating functional proteins is the read‐through, but the outcome of read‐through products is highly variable depending on the interplay between the missense mutation caused by the read‐through and the structural context of the protein. Pharmacological studies of these three PTCs with various CFTR modulators suggest position‐dependent therapeutic strategies for these disease‐inflicting mutations. Abstract About one‐third of genetic diseases and cancers are caused by the introduction of premature termination codons (PTCs). In theory, the location of the PTC in a gene determines the alternative mechanisms of translation, including premature cessation or reinitiation of translation, and read‐through, resulting in differential effects on protein integrity. In this study, we used CFTR as a model system to investigate the positional effect of the PTC because of its well‐understood structure‐function relationship and pathophysiology. The characterization of three PTC mutations, E60X‐, G542X‐ and W1282X‐CFTR revealed heterogenous effects of these PTCs on CFTR function. The W1282X mutation results in both C‐terminus truncated and read‐through proteins that are partially or fully functional. In contrast, only the read‐through protein is functional with E60X‐ and G542X‐CFTR, although abundant N‐terminus truncated proteins due to reinitiation of translation were detected in E60X‐CFTR. Single‐channel studies of the read‐through proteins of E60X‐ and G542X‐CFTR demonstrated that both mutations have a single‐channel amplitude similar to wild type (WT), and good responses to high‐affinity ATP analogues, suggesting intact ion permeation pathways and nucleotide binding domains (NBDs), albeit with reduced open probability ( P o ). The comparison of the P o of these mutations with the proposed missense mutations revealed potential identities of the read‐through products. Importantly, a majority of the functional protein studied responds to CFTR modulators like GLPG1837 and Lumacaftor. These results not only expand current understanding of the molecular (patho)physiology of CFTR, but also infer therapeutic strategies for different PTC mutations at large.
机译:与严重形式的囊性纤维化(CF)相关的囊性纤维化跨膜电导调节剂(CFTR)的三个无意义突变的重点生物化学和生物物理特征揭示了过早终止密码子(PTC)对CFTR的重要性和异源影响蛋白质功能。 W1282X-CFTR的电生理学研究,其PTC更接近C-Terminus的C-Terminus,建议存在截短的C-Terminus截短的CFTR蛋白,其具有较差和读数的全长产品。对于G542X和E60X-CFTR,能够产生功能蛋白的唯一机制是读数,但读取产品的结果取决于由读取和结构引起的畸形突变之间的相互作用是高度变化的蛋白质的背景。具有各种CFTR调节剂的这三种PTC的药理研究表明这些疾病造成突变的位置依赖性治疗策略。摘要遗传疾病和癌症的三分之一是由引入过早终止密码子(PTC)引起的。理论上,PTC在基因中的位置决定了翻译的替代机制,包括过早停止或改良翻译和再加,导致蛋白质完整性的差异影响。在这项研究中,我们使用CFTR作为模型系统,以研究PTC的位置效果,因为其良好的结构功能关系和病理生理学。三种PTC突变,E60x-,G542x和W1282X-CFTR的表征揭示了这些PTC对CFTR功能的异质效应。 W1282X突变导致截断的截断和读数蛋白质部分或全功能。相反,只有读数蛋白是具有E60x-和G542x-CFTR的函数,尽管在E60x-CFTR中检测到由于改变翻译而截断的蛋白质的丰富的N-末端突变。 E60x-and G542x-CFTR的读取蛋白的单通道研究表明,两个突变都具有与野生型(WT)的单通道振幅,以及对高亲和力ATP类似物的良好反应,表明完整的离子渗透途径和核苷酸结合结构域(NBDS),尽管具有降低的开放概率(P O)。这些突变与提出的畸形突变的Po的比较揭示了读取产品的潜在身份。重要的是,研究的大多数功能蛋白质研究了GLPG1837和Lumacaftor等CFTR调制器。这些结果不仅扩大了对CFTR的分子(Patho)生理学的目前的理解,而且还推断出在大的不同PTC突变的治疗策略。

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