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FOSL2 promotes leptin gene expression in human and mouse adipocytes
Christiane D. Wrann, Jun Eguchi, Aline Bozec, Zhao Xu, Tarjei Mikkelsen, Jeffrey Gimble, Heike Nave, Erwin F. Wagner, Shao-En Ong, Evan D. Rosen
Christiane D. Wrann, Jun Eguchi, Aline Bozec, Zhao Xu, Tarjei Mikkelsen, Jeffrey Gimble, Heike Nave, Erwin F. Wagner, Shao-En Ong, Evan D. Rosen
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Research Article Metabolism

FOSL2 promotes leptin gene expression in human and mouse adipocytes

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Abstract

The adipocyte-derived hormone leptin is a critical regulator of many physiological functions, ranging from satiety to immunity. Surprisingly, very little is known about the transcriptional pathways that regulate adipocyte-specific expression of leptin. Here, we report studies in which we pursued a strategy integrating BAC transgenic reporter mice, reporter assays, and chromatin state mapping to locate an adipocyte-specific cis-element upstream of the leptin (LEP) gene in human fat cells. Quantitative proteomics with affinity enrichment of protein-DNA complexes identified the transcription factor FOS-like antigen 2 (FOSL2) as binding specifically to the identified region, a result that was confirmed by ChIP. Knockdown of FOSL2 in human adipocytes decreased LEP expression, and overexpression of Fosl2 increased Lep expression in mouse adipocytes. Moreover, the elevated LEP expression observed in obesity correlated well with increased FOSL2 levels in mice and humans, and adipocyte-specific genetic deletion of Fosl2 in mice reduced Lep expression. Taken together, these data identify FOSL2 as a critical regulator of leptin expression in adipocytes.

Authors

Christiane D. Wrann, Jun Eguchi, Aline Bozec, Zhao Xu, Tarjei Mikkelsen, Jeffrey Gimble, Heike Nave, Erwin F. Wagner, Shao-En Ong, Evan D. Rosen

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Figure 1

Gross mapping of cis-regulatory elements for adipocyte-specific Lep gene expression using BAC transgenic mouse lines.

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Gross mapping of cis-regulatory elements for adipocyte-specific Lep gene...
Top: Map of the Lep locus on mouse chromosome 6, showing areas of mouse-human conservation and regions covered by the 3 engineered BACs (M21, D7, and D4). Numbers refer to genomic coordinates for the beginning and end of each BAC, as well as the starting ATG of Lep (in exon 2) and the terminal GAA (in exon 3). There are no other known transcripts within this 300,000-bp region. Bottom: Maps of “trimmed” BACs. Numbers represent genomic coordinates of the ends of 4 new modified BACs, as well as exon 1, the terminal GAA in exon 3, and the transcriptional stop site.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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