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FoxO1 negatively regulates leptin-induced POMC transcription through its direct interaction with STAT3
Wei Ma1, Gloria Fuentes2, Xiaohe Shi1
1*Singapore Bioimaging Consortium, Singapore 138667, Republic of Singapore.
Abstract:
FoxO1, which is up-regulated during early stages of diet-induced leptin resistance, directly interacts with STAT3 and prevents STAT3 from binding to specificity protein 1 (SP1)-pro-opiomelanocortin (POMC) promoter complex, and thereby inhibits STAT3-mediated regulation of POMC transcription. FoxO1 also binds directly to the POMC promoter and negatively regulates its transcription. The present study aims to understand the relative contribution of the two interactions in regulating POMC expression. We studied the structural requirement of FoxO1 for its interaction with STAT3 and POMC promoter, and tested the inhibitory action of FoxO1 mutants by using biochemical assays, molecular biology and computer modelling. FoxO1 mutant with deletion of residues Ala137-Leu160 failed to bind to STAT3 or inhibit STAT3-mediated POMC activation, although its binding to the POMC promoter was unaffected. Further analysis mapped Gly140-Leu160 to be critical for STAT3 binding. The identified region Gly140-Leu160 was conserved among mammalian FoxO1 proteins, and showed a high degree of sequence identity with FoxO3, but not FoxO4. Consistently, FoxO3 could interact with STAT3 and inhibit POMC promoter activity, whereas FoxO4 could not bind to STAT3 or affect POMC promoter activity. We further identified that five residues (Gln145, Arg147, Lys148, Arg153 and Arg154) in FoxO1 were necessary in FoxO1-STAT3 interaction, and mutation of these residues abolished its interaction with STAT3 and inhibition of POMC promoter activity. Finally, a FoxO1-STAT3 interaction interface model generated by computational docking simulations confirmed that the identified residues of FoxO1 were in close proximity to STAT3. These results show that FoxO1 inhibits STAT3-mediated leptin signalling through direct interaction with STAT3.
Insights
Forkhead box protein 1 (FoxO1) directly interacts with Signal transducer and activator of transcription 3 (STAT3), inhibiting STAT3
Area of Science:
- Molecular Endocrinology
- Signal Transduction
- Gene Regulation
Background:
- Leptin resistance, often induced by diet, involves increased FoxO1 expression.
- FoxO1 influences pro-opiomelanocortin (POMC) transcription through interactions with STAT3 and the POMC promoter.
- The precise mechanisms and contributions of these interactions in regulating POMC expression remain to be fully elucidated.
Purpose of the Study:
- To investigate the structural basis of FoxO1's interaction with STAT3 and the POMC promoter.
- To determine the relative importance of FoxO1's interactions with STAT3 versus the POMC promoter in regulating POMC transcription.
- To identify specific residues in FoxO1 critical for STAT3 binding and subsequent inhibition of leptin signaling.
Main Methods:
- Biochemical assays and molecular biology techniques were employed to study FoxO1 mutants.
- Computational modeling and docking simulations were used to analyze protein-protein interactions.
- Mutagenesis studies identified key residues involved in the FoxO1-STAT3 interaction.
Main Results:
- A specific region (Gly140-Leu160) in FoxO1 was identified as critical for STAT3 binding.
- Mutations within this region abolished FoxO1's ability to bind STAT3 and inhibit POMC transcription.
- Five specific residues in FoxO1 (Gln145, Arg147, Lys148, Arg153, Arg154) were essential for STAT3 interaction.
Conclusions:
- FoxO1 directly interacts with STAT3 via a specific interface, inhibiting STAT3-mediated leptin signaling.
- This interaction is a key mechanism by which FoxO1 regulates POMC expression.
- The findings provide structural insights into the molecular basis of FoxO1-STAT3 interaction and its role in metabolic regulation.
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