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Macrophage-secreted Factors Promote a Profibrotic Phenotype in Human Preadipocytes

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Journal Mol Endocrinol
Date 2008 Oct 24
PMID 18945811
Citations 111
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Abstract

White adipose tissue (WAT) in obese humans is characterized by macrophage accumulation the effects of which on WAT biology are not fully understood. We previously demonstrated that macrophage-secreted factors impair preadipocyte differentiation and induce inflammation, and we described the excessive fibrotic deposition in WAT from obese individuals. Microarray analysis revealed significant overexpression of extracellular matrix (ECM) genes in inflammatory preadipocytes. We show here an organized deposition of fibronectin, collagen I, and tenascin-C and clustering of the ECM receptor alpha5 integrin, characterizing inflammatory preadipocytes. Anti-alpha5 integrin-neutralizing antibody decreased proliferation of these cells, underlining the importance of the fibronectin/integrin partnership. Fibronectin-cultured preadipocytes exhibited increased proliferation and expression of both nuclear factor-kappaB and cyclin D1. Small interfering RNA deletion of nuclear factor-kappaB and cyclin D1 showed that these factors link preadipocyte proliferation with inflammation and ECM remodeling. Macrophage-secreted molecules increased preadipocyte migration through an increase in active/phosphorylated focal adhesion kinase. Gene expression and neutralizing antibody experiments suggest that inhibin beta A, a TGF-beta family member, is a major fibrotic factor. Interactions between preadipocytes and macrophages were favored in a three-dimensional collagen I matrix mimicking the fibrotic context of WAT. Cell-rich regions were immunostained for preadipocytes, proliferation, and macrophages in the vicinity of fibrotic WAT from obese individuals. In conclusion, an inflammatory environment leads to profound modifications of the human preadipocyte phenotype, producing fibrotic components with increased migration and proliferation. This phenomenon might play a role in facilitating the constitution of quiescent preadipocyte pools and eventually in the maintenance and aggravation of increased fat mass in obesity.

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References
1.
Taleb S, Cancello R, Clement K, Lacasa D . Cathepsin s promotes human preadipocyte differentiation: possible involvement of fibronectin degradation. Endocrinology. 2006; 147(10):4950-9. DOI: 10.1210/en.2006-0386. View

2.
Suganami T, Nishida J, Ogawa Y . A paracrine loop between adipocytes and macrophages aggravates inflammatory changes: role of free fatty acids and tumor necrosis factor alpha. Arterioscler Thromb Vasc Biol. 2005; 25(10):2062-8. DOI: 10.1161/01.ATV.0000183883.72263.13. View

3.
Velling T, Risteli J, Wennerberg K, Mosher D, Johansson S . Polymerization of type I and III collagens is dependent on fibronectin and enhanced by integrins alpha 11beta 1 and alpha 2beta 1. J Biol Chem. 2002; 277(40):37377-81. DOI: 10.1074/jbc.M206286200. View

4.
Wang C, Pattabiraman N, Zhou J, Fu M, Sakamaki T, Albanese C . Cyclin D1 repression of peroxisome proliferator-activated receptor gamma expression and transactivation. Mol Cell Biol. 2003; 23(17):6159-73. PMC: 180960. DOI: 10.1128/MCB.23.17.6159-6173.2003. View

5.
Spiegelman B, Ginty C . Fibronectin modulation of cell shape and lipogenic gene expression in 3T3-adipocytes. Cell. 1983; 35(3 Pt 2):657-66. DOI: 10.1016/0092-8674(83)90098-3. View