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Endoplasmic reticulum membrane remodeling by targeting reticulon-4 induces pyroptosis to facilitate antitumor immune
Mei-Mei Zhao1, Ting-Ting Ren2, Jing-Kang Wang1
1State Key Laboratory of Natural and Biomimetic Drugs, School of Pharmaceutical Sciences, Peking University, Beijing 100191, China.
Abstract:
Pyroptosis is an identified programmed cell death that has been highly linked to endoplasmic reticulum (ER) dynamics. However, the crucial proteins for modulating dynamic ER membrane curvature change that trigger pyroptosis are currently not well understood. In this study, a biotin-labeled chemical probe of potent pyroptosis inducer α-mangostin (α-MG) was synthesized. Through protein microarray analysis, reticulon-4 (RTN4/Nogo), a crucial regulator of ER membrane curvature, was identified as a target of α-MG. We observed that chemically induced proteasome degradation of RTN4 by α-MG through recruiting E3 ligase UBR5 significantly enhances the pyroptosis phenotype in cancer cells. Interestingly, the downregulation of RTN4 expression significantly facilitated a dynamic remodeling of ER membrane curvature through a transition from tubules to sheets, consequently leading to rapid fusion of the ER with the cell plasma membrane. In particular, the ER-to-plasma membrane fusion process is supported by the observed translocation of several crucial ER markers to the "bubble" structures of pyroptotic cells. Furthermore, α-MG-induced RTN4 knockdown leads to pyruvate kinase M2 (PKM2)-dependent conventional caspase-3/gasdermin E (GSDME) cleavages for pyroptosis progression. In vivo, we observed that chemical or genetic RTN4 knockdown significantly inhibited cancer cells growth, which further exhibited an antitumor immune response with anti-programmed death-1 (anti-PD-1). In translational research, RTN4 high expression was closely correlated with the tumor metastasis and death of patients. Taken together, RTN4 plays a fundamental role in inducing pyroptosis through the modulation of ER membrane curvature remodeling, thus representing a prospective druggable target for anticancer immunotherapy.
Insights
Reticulon-4 (RTN4) regulates endoplasmic reticulum (ER) membrane curvature, a key factor in pyroptosis. Targeting RTN4 with α-mangostin (α-MG) enhances pyroptosis in cancer cells, inhibiting tumor growth and promoting anti-tumor immunity.
Area of Science:
- Cell Biology
- Cancer Research
- Immunology
Background:
- Pyroptosis, a programmed cell death, is linked to endoplasmic reticulum (ER) dynamics.
- The specific proteins controlling ER membrane curvature changes that trigger pyroptosis are not well understood.
Purpose of the Study:
- To identify key proteins involved in ER membrane curvature modulation during pyroptosis.
- To investigate the role of reticulon-4 (RTN4) in α-mangostin (α-MG)-induced pyroptosis and its therapeutic potential.
Main Methods:
- Synthesis of a biotin-labeled α-mangostin (α-MG) chemical probe.
- Protein microarray analysis to identify α-MG targets.
- Investigating RTN4 degradation, ER membrane remodeling, and pyroptosis progression in cancer cells.
- In vivo studies and correlation analysis of RTN4 expression with patient outcomes.
Main Results:
- Reticulon-4 (RTN4) was identified as a direct target of α-MG.
- α-MG-induced proteasomal degradation of RTN4 enhances pyroptosis by promoting ER-to-plasma membrane fusion.
- RTN4 knockdown facilitates ER membrane remodeling and pyroptosis, dependent on PKM2 and caspase-3/GSDME.
- RTN4 knockdown inhibits cancer growth in vivo and elicits an anti-tumor immune response, including anti-PD-1 activity.
- High RTN4 expression correlates with tumor metastasis and patient mortality.
Conclusions:
- RTN4 is a critical regulator of ER membrane curvature remodeling that induces pyroptosis.
- Targeting RTN4 represents a promising strategy for anticancer immunotherapy.
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