Effect of SNPs on creatine kinase structure and function: identifying potential molecular mechanisms for possible creatine kinase deficiency diseases.

Single-nucleotide polymorphisms (SNPs) are common genetic material changes that often occur naturally. SNPs can cause amino acid replacements that may lead to severe diseases, such as the well-known sickle-cell anemia. We constructed eight SNP mutants of human brain-type creatine kinase (CKB) based...

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Main Authors: Chang Li, Qian Zhang, Wei-Jiang Hu, Hang Mu, Zong Lin, Long Ma, Yong-Doo Park, Hai-Meng Zhou
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2012-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3457962?pdf=render
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spelling doaj-9b80edcb8e4b4f46b5a2620fd668fc8e2020-11-25T01:13:36ZengPublic Library of Science (PLoS)PLoS ONE1932-62032012-01-0179e4594910.1371/journal.pone.0045949Effect of SNPs on creatine kinase structure and function: identifying potential molecular mechanisms for possible creatine kinase deficiency diseases.Chang LiQian ZhangWei-Jiang HuHang MuZong LinLong MaYong-Doo ParkHai-Meng ZhouSingle-nucleotide polymorphisms (SNPs) are common genetic material changes that often occur naturally. SNPs can cause amino acid replacements that may lead to severe diseases, such as the well-known sickle-cell anemia. We constructed eight SNP mutants of human brain-type creatine kinase (CKB) based on bioinformatics predictions. The biochemical and biophysical characteristics of these SNP mutants were determined and compared to those of the wild-type creatine kinase to explore the potential molecular mechanisms of possible creatine kinase SNP-induced diseases. While the reactivation of six SNP mutants after heat shock dropped more than 45%, only three of them showed notable increases in ANS fluorescence intensity and decreases in catalytic efficiency. Among them, H26Y and P36T bind substrates as well as the wild-type form does, but the melting temperatures (T(m)) dropped below body temperature, while the T59I mutant exhibited decreased catalytic activity that was most likely due to the much reduced binding affinity of this mutant for substrates. These findings indicate that SNPs such as H26Y, P36T and T59I have the potential to induce genetic diseases by different mechanisms.http://europepmc.org/articles/PMC3457962?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Chang Li
Qian Zhang
Wei-Jiang Hu
Hang Mu
Zong Lin
Long Ma
Yong-Doo Park
Hai-Meng Zhou
spellingShingle Chang Li
Qian Zhang
Wei-Jiang Hu
Hang Mu
Zong Lin
Long Ma
Yong-Doo Park
Hai-Meng Zhou
Effect of SNPs on creatine kinase structure and function: identifying potential molecular mechanisms for possible creatine kinase deficiency diseases.
PLoS ONE
author_facet Chang Li
Qian Zhang
Wei-Jiang Hu
Hang Mu
Zong Lin
Long Ma
Yong-Doo Park
Hai-Meng Zhou
author_sort Chang Li
title Effect of SNPs on creatine kinase structure and function: identifying potential molecular mechanisms for possible creatine kinase deficiency diseases.
title_short Effect of SNPs on creatine kinase structure and function: identifying potential molecular mechanisms for possible creatine kinase deficiency diseases.
title_full Effect of SNPs on creatine kinase structure and function: identifying potential molecular mechanisms for possible creatine kinase deficiency diseases.
title_fullStr Effect of SNPs on creatine kinase structure and function: identifying potential molecular mechanisms for possible creatine kinase deficiency diseases.
title_full_unstemmed Effect of SNPs on creatine kinase structure and function: identifying potential molecular mechanisms for possible creatine kinase deficiency diseases.
title_sort effect of snps on creatine kinase structure and function: identifying potential molecular mechanisms for possible creatine kinase deficiency diseases.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2012-01-01
description Single-nucleotide polymorphisms (SNPs) are common genetic material changes that often occur naturally. SNPs can cause amino acid replacements that may lead to severe diseases, such as the well-known sickle-cell anemia. We constructed eight SNP mutants of human brain-type creatine kinase (CKB) based on bioinformatics predictions. The biochemical and biophysical characteristics of these SNP mutants were determined and compared to those of the wild-type creatine kinase to explore the potential molecular mechanisms of possible creatine kinase SNP-induced diseases. While the reactivation of six SNP mutants after heat shock dropped more than 45%, only three of them showed notable increases in ANS fluorescence intensity and decreases in catalytic efficiency. Among them, H26Y and P36T bind substrates as well as the wild-type form does, but the melting temperatures (T(m)) dropped below body temperature, while the T59I mutant exhibited decreased catalytic activity that was most likely due to the much reduced binding affinity of this mutant for substrates. These findings indicate that SNPs such as H26Y, P36T and T59I have the potential to induce genetic diseases by different mechanisms.
url http://europepmc.org/articles/PMC3457962?pdf=render
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