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The KLF2 transcription factor does not affect the formation of preadipocytes but inhibits their differentiation into
Jinghai Wu1, Seetha V Srinivasan, Jon C Neumann
1Department of Molecular Genetics, Biochemistry, and Microbiology, University of Cincinnati Medical Center, 231 Albert Sabin Way, Cincinnati, Ohio 45267, USA.
Abstract:
Kruppel-like transcription factor 2 (KLF2), a critical gene for mouse embryogenesis, was recently identified as an inhibitor of adipogenesis. However, it is still unknown whether KLF2 is a natural repressor of adipocyte differentiation and if KLF2 affects the formation of preadipocytes. It may also be important for preadipocyte formation, as KLF2 is crucial for lung development and blood vessel formation. In this study, we show that differentiation of preadipocytes not only results in a concomitant decrease in the levels of KLF2 protein but also significantly reduces KLF2 promoter activity. We have generated tet-responsive lines of 3T3L1 that express physiological levels of KLF2 and show that reexpression of KLF2 prevents preadipocyte differentiation, thereby confirming the inhibition of adipogenesis by KLF2, partially via the restoration of Pref-1. In addition, we studied the contribution of KLF2-negative cells to the formation and subsequent differentiation of preadipocytes. We demonstrate that embryoid bodies derived from KLF2(-)(/)(-) ES cells can differentiate into adipocytes as evidenced by the accumulation of lipids and expression of several biochemical markers. Moreover, mouse embryonic fibroblasts (MEFs) derived from KLF2(-)(/)(-) mouse embryos differentiate efficiently into adipocytes. Interestingly, quantification of lipid accumulation in MEFs indicated that KLF2(-)(/)(-) cells are more prone to differentiate at the early stage of the process, suggesting that KLF2 is a natural repressor of differentiation in vivo. Taken together, these studies demonstrate that KLF2 does not affect the commitment of multipotent stem cells into the preadipocytic lineage but rather maintains their preadipocyte state and thereby negatively regulates their transition into adipocytes.
Insights
Kruppel-like factor 2 (KLF2) inhibits adipocyte differentiation by maintaining preadipocyte state, not affecting stem cell commitment. Loss of KLF2 promotes early adipocyte differentiation in vivo.
Area of Science:
- Cell Biology
- Developmental Biology
- Gene Regulation
Background:
- Kruppel-like factor 2 (KLF2) is essential for embryogenesis and has been linked to adipogenesis inhibition.
- The precise role of KLF2 in adipocyte differentiation and preadipocyte formation remains unclear.
Purpose of the Study:
- To investigate whether KLF2 acts as a natural repressor of adipocyte differentiation.
- To determine if KLF2 influences preadipocyte formation and commitment.
Main Methods:
- Utilized tet-responsive 3T3L1 cell lines to modulate KLF2 expression.
- Analyzed KLF2 protein levels and promoter activity during preadipocyte differentiation.
- Examined adipocyte differentiation in embryoid bodies and mouse embryonic fibroblasts (MEFs) derived from KLF2-deficient (KLF2(-)/(-)) cells.
Main Results:
- Preadipocyte differentiation led to decreased KLF2 protein and promoter activity.
- Re-expression of KLF2 in 3T3L1 cells inhibited adipogenesis, partly by restoring Pref-1 levels.
- KLF2(-)/(-), ES cells and MEFs exhibited efficient adipocyte differentiation with increased lipid accumulation.
- KLF2(-)/(-), MEFs showed enhanced differentiation propensity at early stages.
Conclusions:
- KLF2 does not impact the commitment of stem cells to the preadipocytic lineage.
- KLF2 functions to maintain the preadipocyte state, negatively regulating their transition into mature adipocytes.
- KLF2 acts as a natural repressor of adipocyte differentiation in vivo.
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