Transcriptional Regulation of Adipogenesis

被引:241
作者
de Sa, Paula Mota [1 ]
Richard, Allison J. [1 ]
Hang, Hardy [1 ]
Stephens, Jacqueline M. [1 ]
机构
[1] Louisiana State Univ Syst, Pennington Biomed Res Ctr, Baton Rouge, LA 70803 USA
关键词
ACTIVATED-RECEPTOR-GAMMA; INHIBITS ADIPOCYTE DIFFERENTIATION; ELEMENT-BINDING PROTEIN-1; TUMOR-NECROSIS-FACTOR; BROWN ADIPOSE-TISSUE; 11-BETA-HYDROXYSTEROID DEHYDROGENASE TYPE-1; KINASE-MEDIATED PHOSPHORYLATION; SITE-RELATED SPECIFICITIES; STEM-CELL COMMITMENT; PPAR-GAMMA;
D O I
10.1002/cphy.c160022
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Adipocytes are the defining cell type of adipose tissue. Once considered a passive participant in energy storage, adipose tissue is now recognized as a dynamic organ that contributes to several important physiological processes, such as lipid metabolism, systemic energy homeostasis, and whole-body insulin sensitivity. Therefore, understanding the mechanisms involved in its development and function is of great importance. Adipocyte differentiation is a highly orchestrated process which can vary between different fat depots as well as between the sexes. While hormones, miRNAs, cytoskeletal proteins, and many other effectors can modulate adipocyte development, the best understood regulators of adipogenesis are the transcription factors that inhibit or promote this process. Ectopic expression and knockdown approaches in cultured cells have been widely used to understand the contribution of transcription factors to adipocyte development, providing a basis for more sophisticated in vivo strategies to examine adipogenesis. To date, over two dozen transcription factors have been shown to play important roles in adipocyte development. These transcription factors belong to several families with many different DNA-binding domains. While peroxisome proliferator-activated receptor gamma (PPAR.) is undoubtedly the most important transcriptional modulator of adipocyte development in all types of adipose tissue, members of the CCAAT/enhancer-binding protein, Kruppel-like transcription factor, signal transducer and activator of transcription, GATA, early B cell factor, and interferon-regulatory factor families also regulate adipogenesis. The importance of PPAR gamma activity is underscored by several covalent modifications that modulate its activity and its ability to modulate adipocyte development. This review will primarily focus on the transcriptional control of adipogenesis in white fat cells and on the mechanisms involved in this fine-tuned developmental process. (C) 2017 American Physiological Society.
引用
收藏
页码:635 / 674
页数:40
相关论文
共 333 条
  • [1] Transcriptional activation by peroxisome proliferator-activated receptor gamma is inhibited by phosphorylation at a consensus mitogen-activated protein kinase site
    Adams, M
    Reginato, MJ
    Shao, DL
    Lazar, MA
    Chatterjee, VK
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 1997, 272 (08) : 5128 - 5132
  • [2] Direct Transcriptional Repression of Zfp423 by Zfp521 Mediates a Bone Morphogenic Protein-Dependent Osteoblast versus Adipocyte Lineage Commitment Switch
    Addison, William N.
    Fu, Martin M.
    Yang, Helen X.
    Lin, Zhao
    Nagano, Kenichi
    Gori, Francesca
    Baron, Roland
    [J]. MOLECULAR AND CELLULAR BIOLOGY, 2014, 34 (16) : 3076 - 3085
  • [3] Gene expression analysis suggests that EBF-1 and PPARγ2 induce adipogenesis of NIH-3T3 cells with similar efficiency and kinetics
    Åkerblad, P
    Månsson, R
    Lagergren, A
    Westerlund, S
    Basta, B
    Lind, U
    Thelin, A
    Gisler, R
    Liberg, D
    Nelander, S
    Bamberg, K
    Sigvardsson, M
    [J]. PHYSIOLOGICAL GENOMICS, 2005, 23 (02) : 206 - 216
  • [4] GQ-16, a Novel Peroxisome Proliferator-activated Receptor γ (PPARγ) Ligand, Promotes Insulin Sensitization without Weight Gain
    Amato, Angelica A.
    Rajagopalan, Senapathy
    Lin, Jean Z.
    Carvalho, Bruno M.
    Figueira, Ana C. M.
    Lu, Jenny
    Ayers, Stephen D.
    Mottin, Melina
    Silveira, Rodrigo L.
    Souza, Paulo C. T.
    Mourao, Rosa H. V.
    Saad, Mario J. A.
    Togashi, Marie
    Simeoni, Luiz A.
    Abdalla, Dulcineia S. P.
    Skaf, Munir S.
    Polikparpov, Igor
    Lima, Maria C. A.
    Galdino, Suely L.
    Brennan, Richard G.
    Baxter, John D.
    Pitta, Ivan R.
    Webb, Paul
    Phillips, Kevin J.
    Neves, Francisco A. R.
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 2012, 287 (33) : 28169 - 28179
  • [5] St. John's Wort inhibits adipocyte differentiation and induces insulin resistance in adipocytes
    Amini, Zhaleh
    Boyd, Bryant
    Doucet, Julie
    Ribnicky, David M.
    Stephens, Jacqueline M.
    [J]. BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2009, 388 (01) : 146 - 149
  • [6] Adipose tissue mass is modulated by SLUG (SNAI2)
    Antonio Perez-Mancera, Pedro
    Bermejo-Rodriguez, Camino
    Gonzalez-Herrero, Ines
    Herranz, Michel
    Flores, Teresa
    Jimenez, Rafael
    Sanchez-Garcia, Isidro
    [J]. HUMAN MOLECULAR GENETICS, 2007, 16 (23) : 2972 - 2986
  • [7] MicroRNA regulatory networks in human adipose tissue and obesity
    Arner, Peter
    Kulyte, Agne
    [J]. NATURE REVIEWS ENDOCRINOLOGY, 2015, 11 (05) : 276 - 288
  • [8] DNA binding-dependent glucocorticoid receptor activity promotes adipogenesis via Kruppel-like factor 15 gene expression
    Asada, Maki
    Rauch, Alexander
    Shimizu, Hirohito
    Maruyama, Hiromi
    Miyaki, Shigeru
    Shibamori, Masafumi
    Kawasome, Hideki
    Ishiyama, Hironobu
    Tuckermann, Jan
    Asahara, Hiroshi
    [J]. LABORATORY INVESTIGATION, 2011, 91 (02) : 203 - 215
  • [9] Nucleoredoxin promotes adipogenic differentiation through regulation of Wnt/β-catenin signaling
    Bahn, Young Jae
    Lee, Kwang-Pyo
    Lee, Seung-Min
    Choi, Jeong Yi
    Seo, Yeon-Soo
    Kwon, Ki-Sun
    [J]. JOURNAL OF LIPID RESEARCH, 2015, 56 (02) : 294 - 303
  • [10] The Kruppel-like factor KLF2 inhibits peroxisome proliferator-activated receptor-γ expression and adipogenesis
    Banerjee, SS
    Feinberg, MW
    Watanabe, M
    Gray, S
    Haspel, RL
    Denkinger, DJ
    Kawahara, R
    Hauner, H
    Jain, MK
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 2003, 278 (04) : 2581 - 2584