Literature DB >> 21189066

Two novel SNPs in HSF1 gene are associated with thermal tolerance traits in Chinese Holstein cattle.

Qiu-Ling Li1, Zhi-Hua Ju, Jin-Ming Huang, Jian-Bin Li, Rong-Ling Li, Ming-Hai Hou, Chang-Fa Wang, Ji-Feng Zhong.   

Abstract

Heat-shock transcription factors (HSFs) play an important role in regulating heat stress response. The activation of heat-shock protein (HSP) genes is mediated by HSFs, which bind to promoters of HSP genes. In this research, two novel single nucleotide polymorphisms, T909C and G4693T, and their association with thermal tolerance were investigated in 951 Chinese Holstein cattle. Linkage disequilibrium and haplotype construction were analyzed using SHEsis software. Four haplotypes were constructed, and nine haplotype combinations were found. Potassium content in erythrocytes (PCE), decreased rate of milk production (R), rectal temperature (RT), and heat-tolerance coefficient (HTC) were selected for the thermotolerance index. Association analysis showed that thermal tolerance in Chinese Holstein cattle was significantly affected by T909C and G4693T. The PCE of cows with CC or TC genotype was lower than that of TT at the 909 position (p < 0.05). Cows with TT genotype had lower PCE (p < 0.01) and higher HTC (p < 0.05) at the 4693 position. Cows with H2H4 haplotype combination had lower PCE (p < 0.01), R (p < 0.05) and RT (p < 0.05) and higher HTC (p < 0.05) than those with H1H3 haplotype combination. Bioinformatic analysis predicted that the 4693 position was located in the microRNA-binding (bta-miR-484) region. Quantitative reverse transcription-polymerase chain reaction demonstrated that 4693-T mutation caused the disruption of microRNA target binding, resulting in the relief of the transcriptional repression, which, in turn, resulted in increased expression. Thus, the HSF1 gene is useful in dairy cattle thermal tolerant breeding.

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Year:  2010        PMID: 21189066     DOI: 10.1089/dna.2010.1133

Source DB:  PubMed          Journal:  DNA Cell Biol        ISSN: 1044-5498            Impact factor:   3.311


  16 in total

1.  Polymorphisms in human heat shock factor-1 and analysis of potential biological consequences.

Authors:  Tiffany M Bridges; Rachel G Scheraga; Mohan E Tulapurkar; Dante Suffredini; Stephen B Liggett; Aparna Ramarathnam; Ratnakar Potla; Ishwar S Singh; Jeffrey D Hasday
Journal:  Cell Stress Chaperones       Date:  2014-07-16       Impact factor: 3.667

2.  Effects of heat stress on serum insulin, adipokines, AMP-activated protein kinase, and heat shock signal molecules in dairy cows.

Authors:  Li Min; Jian-bo Cheng; Bao-lu Shi; Hong-jian Yang; Nan Zheng; Jia-qi Wang
Journal:  J Zhejiang Univ Sci B       Date:  2015-06       Impact factor: 3.066

3.  Evolutionary and reverse engineering to increase Saccharomyces cerevisiae tolerance to acetic acid, acidic pH, and high temperature.

Authors:  Prisciluis Caheri Salas-Navarrete; Arturo Iván Montes de Oca Miranda; Alfredo Martínez; Luis Caspeta
Journal:  Appl Microbiol Biotechnol       Date:  2021-12-16       Impact factor: 4.813

4.  EEF1A1 transcription cofactor gene polymorphism is associated with muscle gene expression and residual feed intake in Nelore cattle.

Authors:  T F Cardoso; J J Bruscadin; J Afonso; J Petrini; B G N Andrade; P S N de Oliveira; J M Malheiros; M I P Rocha; A Zerlotini; J B S Ferraz; G B Mourão; L L Coutinho; L C A Regitano
Journal:  Mamm Genome       Date:  2022-07-11       Impact factor: 3.224

5.  Genetic variations of HSBP1 gene and its effect on thermal performance traits in Chinese Holstein cattle.

Authors:  YanJiu Wang; Jingmin Huang; Peng Xia; JianBin He; Changfa Wang; Zhihua Ju; Jianbin Li; Rongling Li; Jifeng Zhong; Qiuling Li
Journal:  Mol Biol Rep       Date:  2013-04-10       Impact factor: 2.316

Review 6.  Impact of heat stress on health and performance of dairy animals: A review.

Authors:  Ramendra Das; Lalrengpuii Sailo; Nishant Verma; Pranay Bharti; Jnyanashree Saikia; Rakesh Kumar
Journal:  Vet World       Date:  2016-03-12

7.  Assessment of runs of homozygosity islands and estimates of genomic inbreeding in Gyr (Bos indicus) dairy cattle.

Authors:  Elisa Peripolli; Nedenia Bonvino Stafuzza; Danísio Prado Munari; André Luís Ferreira Lima; Renato Irgang; Marco Antonio Machado; João Cláudio do Carmo Panetto; Ricardo Vieira Ventura; Fernando Baldi; Marcos Vinícius Gualberto Barbosa da Silva
Journal:  BMC Genomics       Date:  2018-01-09       Impact factor: 3.969

Review 8.  Metabolic responses and "omics" technologies for elucidating the effects of heat stress in dairy cows.

Authors:  Li Min; Shengguo Zhao; He Tian; Xu Zhou; Yangdong Zhang; Songli Li; Hongjian Yang; Nan Zheng; Jiaqi Wang
Journal:  Int J Biometeorol       Date:  2016-11-30       Impact factor: 3.787

9.  Identification of common carp (Cyprinus carpio) microRNAs and microRNA-related SNPs.

Authors:  Ya-Ping Zhu; Wei Xue; Jin-Tu Wang; Yu-Mei Wan; Shao-Lin Wang; Peng Xu; Yan Zhang; Jiong-Tang Li; Xiao-Wen Sun
Journal:  BMC Genomics       Date:  2012-08-21       Impact factor: 3.969

10.  Periconceptional Heat Stress of Holstein Dams Is Associated with Differences in Daughter Milk Production during Their First Lactation.

Authors:  Britni M Brown; Jon W Stallings; John S Clay; Michelle L Rhoads
Journal:  PLoS One       Date:  2016-02-03       Impact factor: 3.240

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