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Investigation of deleterious effects of nsSNPs in the <i>POT1</i> gene: a structural genomics‐based approach to understand the mechanism of cancer development

Mohd. AmirCentre for Interdisciplinary Research in Basic Sciences, Jamia Millia Islamia New Delhi IndiaVijay KumarAmity Institute of Neuropsychology &amp; Neurosciences, Amity University Noida Uttar Pradesh IndiaTaj MohammadCentre for Interdisciplinary Research in Basic Sciences, Jamia Millia Islamia New Delhi IndiaRavins DohareCentre for Interdisciplinary Research in Basic Sciences, Jamia Millia Islamia New Delhi IndiaAfzal HussainDepartment of Pharmacognosy College of Pharmacy, King Saud University Riyadh Saudi ArabiaMd Tabish RehmanDepartment of Pharmacognosy College of Pharmacy, King Saud University Riyadh Saudi ArabiaPerwez AlamDepartment of Pharmacognosy College of Pharmacy, King Saud University Riyadh Saudi ArabiaMohamed F. AlajmiDepartment of Pharmacognosy College of Pharmacy, King Saud University Riyadh Saudi ArabiaAsimul IslamCentre for Interdisciplinary Research in Basic Sciences, Jamia Millia Islamia New Delhi IndiaFaizan AhmadCentre for Interdisciplinary Research in Basic Sciences, Jamia Millia Islamia New Delhi IndiaMd. Imtaiyaz HassanCentre for Interdisciplinary Research in Basic Sciences, Jamia Millia Islamia New Delhi India
2018en
ABI

Аннотация

Protection of telomere 1 (POT1) is one of the key components of shelterin complex, implicated in maintaining the telomere homeostasis, and thus stability of the eukaryotic genome. A large number of non-synonymous single nucleotide polymorphisms (nsSNPs) in the POT1 gene have been reported to cause varieties of human diseases, including cancer. In recent years, a number of mutations in POT1 has been markedly increased, and interpreting the effect of these large numbers of mutations to understand the mechanism of associated diseases seems impossible using experimental approaches. Herein, we employ varieties of computational methods such as PROVEAN, PolyPhen-2, SIFT, PoPMuSiC, SDM2, STRUM, and MAESTRO to identify the effects of 387 nsSNPs on the structure and function of POT1 protein. We have identified about 183 nsSNPs as deleterious and termed them as "high-confidence nsSNPs." Distribution of these high-confidence nsSNPs demonstrates that the mutation in oligonucleotide binding domain 1 is highly deleterious (one in every three nsSNPs), and high-confidence nsSNPs show a strong correlation with residue conservation. The structure analysis provides a detailed insights into the structural changes occurred in consequence of conserved mutations which lead to the cancer progression. This study, for the first time, offers a newer prospective on the role of POT1 mutations on the structure, function, and their relation to associated diseases.

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