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Repressing Gene Transcription by Redirecting Cellular Machinery with Chemical Epigenetic Modifiers
Published on: September 20, 2018
Syntenin-mediated regulation of Sox4 proteasomal degradation modulates transcriptional output
J M Beekman1, S J Vervoort, F Dekkers
1Department of Immunology, University Medical Center Utrecht, Utrecht, The Netherlands.
Abstract:
The transcription factor Sox4 is aberrantly expressed in many human tumors and can modulate tumorigenesis and metastases of murine tumors in vivo. However, mechanisms that control Sox4 function remain poorly defined. It has recently been observed that DNA damage increases Sox4 protein expression independently of Sox4 mRNA levels, suggesting an as yet undefined post-transcriptional mechanism regulating Sox4 expression and functionality. Here, we show that Sox4 protein is rapidly degraded by the proteasome as indicated by pharmacological inhibition with Mg132 and epoxymycin. Sox4 half-life was found to be less than 1 h as evident by inhibition of protein synthesis using cycloheximide. Ectopic expression of Sox4 deletion mutants revealed that the C-terminal 33 residues of Sox4 were critical in modulating its degradation in a polyubiquitin-independent manner. Syntenin, a Sox4 binding partner, associates with this domain and was found to stabilize Sox4 expression. Syntenin-induced stabilization of Sox4 correlated with Sox4-syntenin relocalization to the nucleus, where both proteins accumulate. Syntenin overexpression or knockdown in human tumor cell lines was found to reciprocally modulate Sox4 protein expression and transcriptional activity implicating its role as a regulator of Sox4. Taken together, our data demonstrate that the Sox4 C-terminal domain regulates polyubiquitin-independent proteasomal degradation of Sox4 that can be modulated by interaction with syntenin. As aberrant Sox4 expression has been found associated with many human cancers, modulation of Sox4 proteasomal degradation may impact oncogenesis and metastatic properties of tumors.
Insights
The transcription factor Sox4 is rapidly degraded by the proteasome, but its binding partner syntenin stabilizes Sox4 expression. This interaction impacts Sox4
Area of Science:
- Molecular Biology
- Cancer Biology
- Protein Degradation
Background:
- Sox4 (Sry-related HMG-box 4) is a transcription factor implicated in human tumorigenesis.
- Aberrant Sox4 expression is observed in numerous cancers, yet regulatory mechanisms remain unclear.
- Post-transcriptional regulation of Sox4 is suggested by DNA damage-induced protein level increases independent of mRNA.
Purpose of the Study:
- To elucidate the post-transcriptional mechanisms controlling Sox4 protein stability.
- To investigate the role of Sox4's C-terminal domain in its degradation.
- To identify proteins that modulate Sox4 stability and function.
Main Methods:
- Proteasomal degradation assays using inhibitors (MG132, epoxomycin).
- Protein half-life determination via cycloheximide treatment.
- Analysis of Sox4 deletion mutants and interaction with syntenin using ectopic expression and knockdown in human tumor cell lines.
Main Results:
- Sox4 protein exhibits rapid proteasomal degradation with a half-life under 1 hour.
- The C-terminal 33 residues of Sox4 are crucial for its polyubiquitin-independent degradation.
- Syntenin binds to Sox4, stabilizes its expression, and promotes nuclear relocalization, reciprocally modulating Sox4 activity.
Conclusions:
- Sox4 degradation is regulated by its C-terminal domain via a polyubiquitin-independent proteasomal pathway.
- Syntenin acts as a key stabilizer of Sox4, influencing its nuclear accumulation and transcriptional activity.
- Targeting Sox4 proteasomal degradation represents a potential therapeutic strategy for cancers with aberrant Sox4 expression.
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