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SRBD1 Regulates the Cell Cycle, Apoptosis, and M2 Macrophage Polarization via the RPL11-MDM2-p53 Pathway in Glioma
Hongfu Chen1,2, Shuping Gao3, Peng Wang4
1Department of Neurosurgery, The Second Affiliated Hospital of Soochow University, Suzhou, Jiangsu, People's Republic of China.
Abstract:
Low expression of certain ribosomal proteins leads to the inactivation of p53, which is mediated mainly by RPL5 or RPL11 (ribosomal protein L11). It is also unknown what mechanisms drive aberrant ribosomal proteins expression in tumor. SRBD1 (S1 RNA-binding domain 1), as a highly conserved RNA-binding protein, is lowly expressed in glioma tissues and correlated with glioma prognosis. In this study, we observed that SRBD1 was closely related to p53 signaling. The upregulation of SRBD1 elevated p53 levels, thereby activating the p53 signaling pathway. As an RNA bind protein, SRBD1 could bind to the 5'-UTR of target genes and regulate RNA translation. We further conducted RNA immunoprecipitation using anti-SRDB1 antibody and noticed 29 hub RNA, including RPL11. RPL11 could inhibit MDM2-mediated p53 ubiquitination. SRBD1 upregulation promoted RPL11 binding to MDM2 via elevating RPL11 protein levels, which in turn activated the p53 signaling. Disrupting the p53 signaling blocked SRBD1-induced glioma suppression. In mouse xenograft model, SRBD1 ectopic expression was effective in reducing the total M2 tumor-associated macrophages (TAMs) density and suppressed glioma tumor growth. In summary, these data show that SRBD1 has a critical role in inhibition of glioma tumor growth and M2 macrophage polarization, and targeting RPL11-MDM2-p53 signaling may be an effective strategy to improve therapy and survival for glioma patients.
Insights
The S1 RNA-binding domain 1 (SRBD1) protein, when upregulated, activates the p53 signaling pathway by stabilizing ribosomal protein L11 (RPL11), suppressing glioma growth and M2 macrophage polarization.
Area of Science:
- Oncology
- Molecular Biology
- Cellular Biology
Background:
- Low expression of ribosomal proteins inactivates p53, a critical tumor suppressor.
- Mechanisms driving aberrant ribosomal protein expression in tumors remain unclear.
- SRBD1 (S1 RNA-binding domain 1) is a conserved RNA-binding protein downregulated in glioma, correlating with poor prognosis.
Purpose of the Study:
- Investigate the role of SRBD1 in glioma.
- Elucidate the molecular mechanisms linking SRBD1 to p53 signaling and glioma progression.
- Evaluate SRBD1's therapeutic potential in glioma.
Main Methods:
- Assessed SRBD1 expression and its correlation with p53 signaling in glioma.
- Utilized RNA immunoprecipitation to identify SRBD1-bound RNAs, including RPL11.
- Conducted in vivo studies using a mouse xenograft model to assess SRBD1's effect on tumor growth and M2 TAMs.
Main Results:
- SRBD1 upregulation elevates p53 levels, activating the p53 signaling pathway.
- SRBD1 enhances RPL11 binding to MDM2, inhibiting p53 ubiquitination and stabilizing p53.
- SRBD1 ectopic expression suppressed glioma tumor growth and reduced M2 TAM density in vivo.
- Disruption of p53 signaling abrogated SRBD1-mediated glioma suppression.
Conclusions:
- SRBD1 plays a critical role in inhibiting glioma tumor growth and M2 macrophage polarization.
- SRBD1 functions by modulating the RPL11-MDM2-p53 signaling axis.
- Targeting the RPL11-MDM2-p53 pathway offers a potential therapeutic strategy for glioma.
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