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RBMX Transcriptionally Repressed by EZH2-Associated H3K27me3 Modification Attenuates Pyroptosis in Renal
Yi-Han Wang1, Yan Teng2, Fang-Lan Yao2
1Department of Kidney Transplantation, The First Affiliated Hospital of Xi'an Jiaotong University, Xi'an, Shaanxi, China.
Abstract:
Ischemic reperfusion injury (IRI) to kidney is a significant clinical factor in acute kidney injury (AKI). This study aimed to investigate the new role of RNA-binding motif protein X-linked (RBMX), a modulator of m6A methylation, in renal IRI and to examine the associated regulatory mechanisms. An in vitro renal IRI model was established using HK-2 cells subjected to hypoxia-reoxygenation (H/R) treatment. To investigate the role of RBMX, RBMX-overexpressing cells were transfected with pcDNA/RBMX. The viability of HK-2 cells was evaluated using the CCK-8 assay. EdU was utilized to evaluate cell proliferation in HK-2 cells. Western blot analysis was conducted to determine the expression levels of proteins involved in NLRP3 inflammasome activation. ELISA was used to measure the secretion of inflammatory cytokines linked to pyroptosis. LDH and PI staining were used to investigate pyroptosis. IP, RIP, and MeRIP assays were performed to detect NLRP3 acetylation and the interaction between NLRP3 and SIRT3. An in vivo IRI mouse model was established to further validate the renoprotective effect of RBMX. Our results showed that RBMX expression was significantly downregulated in IRI mice and in vitro H/R-treated HK-2 cells. In H/R-induced HK-2 cells, RBMX overexpression attenuated NLRP3 inflammasome activation and pyroptosis, shown by reduced expression levels of NLRP3, ASC, cleaved caspase-1, and GSDMD-N, along with decreased levels of IL-18, IL-1β, TNF-α, and IL-6. Additionally, RBMX is associated with the m6A methylation of SIRT3, which is involved in the control of NLRP3 acetylation and activation in H/R-exposed HK-2 cells. SIRT3 knockdown reversed the impacts of RBMX on cell proliferation, NLRP3 inflammasome activation, and pyroptosis. Moreover, EZH2 may be involved in an upstream gene that mediates the H3K27me3 modification of RBMX. Finally, in vivo assays provided evidence suggesting that RBMX overexpression improved renal injury in mice. Taken together, our data support a potential role of the m6A regulator RBMX in suppressing NLRP3 inflammasome activation and pyroptosis possibly through the regulation of m6A methylation of SIRT3 in renal IRI. We hypothesized that targeting the EZH2/RBMX/SIRT3 axis might represent a new therapeutic approach to impede the progression of renal IRI.
Insights
RNA-binding motif protein X-linked (RBMX) suppresses kidney injury from ischemia reperfusion by inhibiting NLRP3 inflammasome activation and pyroptosis. Targeting the EZH2/RBMX/SIRT3 pathway may offer new therapeutic strategies for renal IRI.
Area of Science:
- Renal pathophysiology
- Molecular mechanisms of kidney injury
- Inflammasome biology
Background:
- Ischemic reperfusion injury (IRI) is a major cause of acute kidney injury (AKI).
- The molecular regulators of renal IRI, particularly those involving inflammasome activation and pyroptosis, require further elucidation.
- RNA-binding motif protein X-linked (RBMX) is implicated as a potential modulator of m6A methylation.
Purpose of the Study:
- To investigate the role of RBMX in renal IRI.
- To examine the regulatory mechanisms by which RBMX influences kidney injury.
- To explore the potential of targeting the RBMX pathway for therapeutic intervention in renal IRI.
Main Methods:
- Established in vitro (HK-2 cells with hypoxia-reoxygenation) and in vivo (IRI mouse model) systems.
- Assessed cell viability, proliferation, and pyroptosis markers (NLRP3 inflammasome, cleaved caspase-1, GSDMD-N, IL-1β, IL-18).
- Utilized overexpression, knockdown, Western blot, ELISA, IP, RIP, and MeRIP assays to investigate RBMX, SIRT3, and EZH2 interactions and modifications.
Main Results:
- RBMX expression was significantly downregulated in renal IRI models.
- RBMX overexpression attenuated NLRP3 inflammasome activation and pyroptosis in vitro and reduced renal injury in vivo.
- RBMX regulated SIRT3 m6A methylation, impacting NLRP3 acetylation and activation; EZH2 was identified as an upstream regulator of RBMX.
Conclusions:
- RBMX plays a protective role in renal IRI by suppressing NLRP3 inflammasome activation and pyroptosis.
- The RBMX/SIRT3 axis, potentially modulated by EZH2, is a key pathway in renal IRI.
- Targeting the EZH2/RBMX/SIRT3 axis presents a promising therapeutic strategy for mitigating renal IRI.
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