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Author Spotlight: Evaluating Therapeutic Strategies to Enhance Liver Regeneration
Published on: May 24, 2024
SIRT1 Regulates Hepatocyte Programmed Cell Death via GSDME - IL18 Axis in Human and Mouse Liver Transplantation
Kentaro Kadono1, Hidenobu Kojima1, Siyuan Yao1
1David Geffen School of Medicine, University of California-Los Angeles.
Abstract:
Sirtuin 1 (SIRT1) is a histone/protein deacetylase involved in cellular senescence, inflammation, and stress resistance. We previously reported that myeloid SIRT1 signaling regulates the inflamed liver's canonical pyroptosis cell death pathway. However, whether/how hepatocyte SIRT1 is engaged in programmed cell death in the cold-stressed liver remains uncertain. Here, we undertook translational studies in human and mouse orthotopic liver transplantation (OLT) to interrogate the significance of hepatocyte-specific SIRT1 signaling in cold-stored donor livers and liver grafts after reperfusion. In the clinical arm of sixty human OLT patients, hepatic SIRT1 levels in cold-preserved donor livers correlated with anti-apoptotic Bcl-2 expression. After reperfusion, improved OLT function was accompanied by hepatic SIRT1 levels negatively associated with cleaved caspase-3 expression. In the experimental arm, we compared FLOX-control with hepatocyte-specific SIRT1-KO livers after orthotopic transplantation into WT mouse recipients, parallel with primary murine hepatocyte cultures subjected to cold activation with/without knockdown of SIRT1, GSDME, and IL18Rβ signaling. Hepatocyte SIRT1 deficiency upregulated apoptosis and GSDME-mediated programmed cell death, which in turn deteriorated the hepatocellular function and shortened OLT survival. Augmented GSDME processing, accompanied by increased secretion of IL18 by stressed hepatocytes, was prominent in SIRT1-deficient, cold-stored livers. Hepatocyte SIRT1 signaling regulated anti-apoptotic Bcl-2/XIAP proteins, suppressed cold stress-triggered apoptosis, and mitigated GSDME licensing to release IL18. Notably, while crosslinking IL18R depressed SIRT1 and Bcl-2/XIAP signaling in vitro, IL18 neutralization in vivo prevented hepatocellular damage and restored the anti-apoptotic phenotype in otherwise injury-prone SIRT1-deficient OLTs. In conclusion, this translational study identifies a novel hepatocyte SIRT1-IL18 signaling circuit as a therapeutic target in the mechanism underpinning hepatocyte death in human and mouse liver transplantation.
Insights
Hepatocyte Sirtuin 1 (SIRT1) protects against cold-induced liver injury during transplantation by suppressing apoptosis and GSDME-mediated cell death. Targeting the SIRT1-IL18 pathway may improve liver graft survival.
Area of Science:
- Hepatology
- Cell Death Biology
- Transplantation Immunology
Background:
- Sirtuin 1 (SIRT1) is crucial for cellular stress responses, but its role in hepatocyte programmed cell death during cold-preserved liver transplantation is unclear.
- Previous work linked myeloid SIRT1 to pyroptosis in inflamed livers, necessitating investigation into hepatocyte SIRT1's function in cold-stressed conditions.
Approach:
- Translational studies in human orthotopic liver transplantation (OLT) and mouse models.
- Investigated hepatocyte-specific SIRT1 knockout (KO) mice and primary hepatocyte cultures under cold stress.
- Analyzed signaling pathways including Bcl-2, XIAP, cleaved caspase-3, GSDME, and IL18/IL18Rβ.
Key Points:
- Hepatocyte SIRT1 deficiency exacerbated apoptosis and GSDME-mediated cell death in cold-stressed livers, worsening OLT function and survival.
- SIRT1 signaling suppressed cold stress-induced apoptosis by regulating Bcl-2/XIAP and mitigating GSDME activation, thereby limiting IL18 release.
- IL18 neutralization in vivo protected against hepatocellular damage in SIRT1-deficient OLTs, restoring an anti-apoptotic phenotype.
Conclusions:
- Identified a novel hepatocyte SIRT1-IL18 signaling circuit regulating programmed cell death in liver transplantation.
- This pathway represents a potential therapeutic target to mitigate hepatocyte death and improve outcomes in liver grafts.

