Literature DB >> 25384146

Preadipocyte and adipose tissue differentiation in meat animals: influence of species and anatomical location.

G J Hausman1, U Basu, S Wei, D B Hausman, M V Dodson.   

Abstract

Early in porcine adipose tissue development, the stromal-vascular (SV) elements control and dictate the extent of adipogenesis in a depot-dependent manner. The vasculature and collagen matrix differentiate before overt adipocyte differentiation. In the fetal pig, subcutaneous (SQ) layer development is predictive of adipocyte development, as the outer, middle, and inner layers of dorsal SQ adipose tissue develop and maintain layered morphology throughout postnatal growth of SQ adipose tissue. Bovine and ovine fetuses contain brown adipose tissue but SQ white adipose tissue is poorly developed structurally. Fetal adipose tissue differentiation is associated with the precocious expression of several genes encoding secreted factors and key transcription factors like peroxisome proliferator activated receptor (PPAR)γ and CCAAT/-enhancer-binding protein. Identification of adipocyte-associated genes differentially expressed by age, depot, and species in vivo and in vitro has been achieved using single-gene analysis, microarrays, suppressive subtraction hybridization, and next-generation sequencing applications. Gene polymorphisms in PPARγ, cathepsins, and uncoupling protein 3 have been associated with back fat accumulation. Genome scans have mapped several quantitative trait loci (QTL) predictive of adipose tissue-deposition phenotypes in cattle and pigs.

Entities:  

Keywords:  ECM; adipocytes; adipose depots; adipose tissue; beef cattle; extracellular matrix; fetal adipose development; gene expression; hormonal regulation; intrinsic regulators; pigs; stromal vascular cells

Mesh:

Substances:

Year:  2014        PMID: 25384146     DOI: 10.1146/annurev-animal-022513-114211

Source DB:  PubMed          Journal:  Annu Rev Anim Biosci        ISSN: 2165-8102            Impact factor:   8.923


  11 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.  Grape seed procyanidin extract inhibits adipogenesis and stimulates lipolysis of porcine adipocytes in vitro.

Authors:  Shengjuan Wei; Yueying Zheng; Mengmeng Zhang; Hao Zheng; Peishi Yan
Journal:  J Anim Sci       Date:  2018-06-29       Impact factor: 3.159

3.  BMP2 increases hyperplasia and hypertrophy of bovine subcutaneous preadipocytes via BMP/SMAD signaling.

Authors:  Liang Yang; Weiguang Hao; Hongzhuang Wang; Wanping Ren; Peishi Yan; Shengjuan Wei
Journal:  In Vitro Cell Dev Biol Anim       Date:  2022-03-11       Impact factor: 2.416

4.  PPARγ agonist through the terminal differentiation phase is essential for adipogenic differentiation of fetal ovine preadipocytes.

Authors:  Yong Pu; Almudena Veiga-Lopez
Journal:  Cell Mol Biol Lett       Date:  2017-03-23       Impact factor: 5.787

5.  Identification and characterization of differentially expressed miRNAs in subcutaneous adipose between Wagyu and Holstein cattle.

Authors:  Yuntao Guo; Xiuxiu Zhang; Wanlong Huang; Xiangyang Miao
Journal:  Sci Rep       Date:  2017-03-08       Impact factor: 4.379

6.  Transcriptome analysis of adipose tissues from two fat-tailed sheep breeds reveals key genes involved in fat deposition.

Authors:  Baojun Li; Liying Qiao; Lixia An; Weiwei Wang; Jianhua Liu; Youshe Ren; Yangyang Pan; Jiongjie Jing; Wenzhong Liu
Journal:  BMC Genomics       Date:  2018-05-08       Impact factor: 3.969

7.  Prediction of the Secretome and the Surfaceome: A Strategy to Decipher the Crosstalk between Adipose Tissue and Muscle during Fetal Growth.

Authors:  Muriel Bonnet; Nicolas Kaspric; Kimberly Vonnahme; Didier Viala; Christophe Chambon; Brigitte Picard
Journal:  Int J Mol Sci       Date:  2020-06-19       Impact factor: 5.923

8.  A functional regulatory variant of MYH3 influences muscle fiber-type composition and intramuscular fat content in pigs.

Authors:  In-Cheol Cho; Hee-Bok Park; Jin Seop Ahn; Sang-Hyun Han; Jae-Bong Lee; Hyun-Tae Lim; Chae-Kyoung Yoo; Eun-Ji Jung; Dong-Hwan Kim; Wu-Sheng Sun; Yuliaxis Ramayo-Caldas; Sang-Geum Kim; Yong-Jun Kang; Yoo-Kyung Kim; Hyun-Sook Shin; Pil-Nam Seong; In-Sul Hwang; Beom-Young Park; Seongsoo Hwang; Sung-Soo Lee; Youn-Chul Ryu; Jun-Heon Lee; Moon-Suck Ko; Kichoon Lee; Göran Andersson; Miguel Pérez-Enciso; Jeong-Woong Lee
Journal:  PLoS Genet       Date:  2019-10-11       Impact factor: 5.917

9.  Potential of Hibiscus sabdariffa Linn. in managing FGF21 resistance in diet-induced-obesity rats via miR-34a regulation.

Authors:  Neng Tine Kartinah; Nisa Komara; Nuraini Diah Noviati; Syarifah Dewi; Sophie Yolanda; Afifa Radhina; Heriyanto Heriyanto; Imelda Rosalyn Sianipar
Journal:  Vet Med Sci       Date:  2021-10-23

Review 10.  Cell Models and Their Application for Studying Adipogenic Differentiation in Relation to Obesity: A Review.

Authors:  Francisco Javier Ruiz-Ojeda; Azahara Iris Rupérez; Carolina Gomez-Llorente; Angel Gil; Concepción María Aguilera
Journal:  Int J Mol Sci       Date:  2016-06-30       Impact factor: 5.923

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