Literature DB >> 18820161

Gene expression patterns during intramuscular fat development in cattle.

Y H Wang1, N I Bower, A Reverter, S H Tan, N De Jager, R Wang, S M McWilliam, L M Cafe, P L Greenwood, S A Lehnert.   

Abstract

Deposition of intramuscular fat, or "marbling," in beef cattle contributes significantly to meat quality variables, including juiciness, flavor, and tenderness. The accumulation of intramuscular fat is largely influenced by the genetic background of cattle, as well as their age and nutrition. To identify genes that can be used as early biomarkers for the prediction of marbling capacity, we studied the muscle transcriptome of 2 cattle crossbreeds with contrasting intramuscular fat content. The transcriptomes of marbling LM tissue of heifers from Wagyu x Hereford (WxH; n = 6) and Piedmontese x Hereford (PxH; n = 7) crosses were profiled by using a combination of complementary DNA microarray and quantitative reverse transcription-PCR. Five biopsies of LM were taken from each animal at approximately 3, 7, 12, 20, and 25 mo from birth. Tissue was also collected from the LM of each animal at slaughter (approximately 30 mo). Microarray experiments, conducted on the first 3 biopsies of 2 animals from each crossbreed, identified 97 differentially expressed genes. The gene expression results indicated that the LM transcriptome of animals with high marbling potential (WxH) could be reliably distinguished from less marbled animals (PxH) when the animals were as young as 7 mo of age. At this early age, one cannot reliably determine meaningful differences in intramuscular fat deposition. We observed greater expression of a set of adipogenesis- and lipogenesis-related genes in the LM of young WxH animals compared with their PxH contemporaries. In contrast, genes highly expressed in PxH animals were associated with mitochondrial oxidative activity. Further quantitative reverse transcription-PCR experiments revealed that the messenger RNA of 6 of the lipogenesis-related genes also peaked at the age of 20 to 25 mo in WxH animals. The messenger RNA expression of ADIPOQ, SCD, and THRSP was highly correlated with intramuscular fat content of an individual in WxH animals. Our study provides clear evidence of early molecular changes associated with marbling and also identifies specific time frames when intramuscular fat development in cattle muscle can be detected by using gene expression. This information could be used by animal scientists to design optimal nutrition for high marbling potential. In addition, the genes found to be highly expressed during development of marbling could be used to develop genetic markers or biomarkers to assist with beef production strategies.

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Year:  2008        PMID: 18820161     DOI: 10.2527/jas.2008-1082

Source DB:  PubMed          Journal:  J Anim Sci        ISSN: 0021-8812            Impact factor:   3.159


  55 in total

1.  Adipose depots differ in cellularity, adipokines produced, gene expression, and cell systems.

Authors:  Michael V Dodson; Min Du; Songbo Wang; Werner G Bergen; Melinda Fernyhough-Culver; Urmila Basu; Sylvia P Poulos; Gary J Hausman
Journal:  Adipocyte       Date:  2014-12-10       Impact factor: 4.534

2.  Intermuscular and intramuscular adipose tissues: Bad vs. good adipose tissues.

Authors:  Gary J Hausman; Urmila Basu; Min Du; Melinda Fernyhough-Culver; Michael V Dodson
Journal:  Adipocyte       Date:  2014-12-10       Impact factor: 4.534

3.  GROWTH AND DEVELOPMENT SYMPOSIUM: STEM AND PROGENITOR CELLS IN ANIMAL GROWTH: The regulation of beef quality by resident progenitor cells1.

Authors:  Xing Fu; Chaoyang Li; Qianglin Liu; Kenneth W McMillin
Journal:  J Anim Sci       Date:  2019-05-30       Impact factor: 3.159

4.  Skeletal muscle specific genes networks in cattle.

Authors:  Natalia Moreno-Sánchez; Julia Rueda; María J Carabaño; Antonio Reverter; Sean McWilliam; Carmen González; Clara Díaz
Journal:  Funct Integr Genomics       Date:  2010-06-04       Impact factor: 3.410

5.  Dietary n-3 fatty acids significantly suppress lipogenesis in bovine muscle and adipose tissue: a functional genomics approach.

Authors:  Beate Hiller; Andrea Herdmann; Karin Nuernberg
Journal:  Lipids       Date:  2011-05-26       Impact factor: 1.880

Review 6.  Regulation of lipid deposition in farm animals: Parallels between agriculture and human physiology.

Authors:  Werner G Bergen; Terry D Brandebourg
Journal:  Exp Biol Med (Maywood)       Date:  2016-06

7.  The Thrsp null mouse (Thrsp(tm1cnm)) and diet-induced obesity.

Authors:  Grant W Anderson; Qihong Zhu; Jennifer Metkowski; Mary Jo Stack; Sunil Gopinath; Cary N Mariash
Journal:  Mol Cell Endocrinol       Date:  2009-01-20       Impact factor: 4.102

8.  Sex-specific effects of exercise ancestry on metabolic, morphological and gene expression phenotypes in multiple generations of mouse offspring.

Authors:  Lisa M Guth; Andrew T Ludlow; Sarah Witkowski; Mallory R Marshall; Laila C J Lima; Andrew C Venezia; Tao Xiao; Mei-Ling Ting Lee; Espen E Spangenburg; Stephen M Roth
Journal:  Exp Physiol       Date:  2013-06-14       Impact factor: 2.969

9.  Adipogenic and energy metabolism gene networks in longissimus lumborum during rapid post-weaning growth in Angus and Angus x Simmental cattle fed high-starch or low-starch diets.

Authors:  Daniel E Graugnard; Paola Piantoni; Massimo Bionaz; Larry L Berger; Dan B Faulkner; Juan J Loor
Journal:  BMC Genomics       Date:  2009-03-31       Impact factor: 3.969

10.  Inferring the transcriptional landscape of bovine skeletal muscle by integrating co-expression networks.

Authors:  Nicholas J Hudson; Antonio Reverter; YongHong Wang; Paul L Greenwood; Brian P Dalrymple
Journal:  PLoS One       Date:  2009-10-01       Impact factor: 3.240

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