Understanding the structure-function relationship of HPRT1 missense mutations in association with Lesch-Nyhan disease and HPRT1-related gout by in silico mutational analysis.
Author | Agrahari, Ashish Kumar |
Author | Krishna Priya, M |
Author | Praveen Kumar, Medapalli |
Author | Tayubi, Iftikhar Aslam |
Author | Siva, R |
Author | Prabhu Christopher, B |
Author | George Priya Doss, C |
Author | Zayed, Hatem |
Available date | 2019-03-06T05:17:22Z |
Publication Date | 2019-02-01 |
Publication Name | Computers in Biology and Medicine |
Identifier | http://dx.doi.org/10.1016/j.compbiomed.2019.02.014 |
Citation | Agrahari AK, Krishna Priya M, Praveen Kumar M, Tayubi IA, Siva R, Prabhu Christopher B, George Priya Doss C, Zayed H. Understanding the structure-function relationship of HPRT1 missense mutations in association with Lesch-Nyhan disease and HPRT1-related gout by in silico mutational analysis. Comput Biol Med. 2019 Feb 23;107:161-171. doi: 10.1016/j.compbiomed.2019.02.014. |
ISSN | 0010-4825 |
Abstract | The nucleotide salvage pathway is used to recycle degraded nucleotides (purines and pyrimidines); one of the enzymes that helps to recycle purines is hypoxanthine guanine phosphoribosyl transferase 1 (HGPRT1). Therefore, defects in this enzyme lead to the accumulation of DNA and nucleotide lesions and hence replication errors and genetic disorders. Missense mutations in hypoxanthine phosphoribosyl transferase 1 (HPRT1) are associated with deficiencies such as Lesch-Nyhan disease and chronic gout, which have manifestations such as arthritis, neurodegeneration, and cognitive disorders. In the present study, we collected 88 non-synonymous single nucleotide polymorphisms (nsSNPs) from the UniProt, dbSNP, ExAC, and ClinVar databases. We used a series of sequence-based and structure-based in silico tools to prioritize and characterize the most pathogenic and stabilizing or destabilizing nsSNPs. Moreover, to obtain the structural impact of the pathogenic mutations, we mapped the mutations to the crystal structure of the HPRT protein. We further subjected these mutant proteins to a 50 ns molecular dynamics simulation (MDS). The MDS trajectory showed that all mutant proteins altered the structural conformation and dynamic behavior of the HPRT protein and corroborated its association with LND and gout. This study provides essential information regarding the use of HPRT protein mutants as potential targets for therapeutic development. |
Language | en |
Publisher | Elsevier |
Subject | HPRT1 Lesch–nyhan disease Molecular dynamics simulation Non-synonymous SNP |
Type | Article |
Pagination | 161-171 |
Volume Number | 107 |
ESSN | 1879-0534 |
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