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RIPK3 dampens mitochondrial bioenergetics and lipid droplet dynamics in metabolic liver disease
Marta B Afonso1, Tawhidul Islam1, Julie Magusto2,3
1Research Institute for Medicines (iMed.ULisboa), Faculty of Pharmacy , Universidade de Lisboa , Lisbon , Portugal.
Background And Aims:
Receptor-interacting protein kinase 3 (RIPK3) mediates NAFLD progression, but its metabolic function is unclear. Here, we aimed to investigate the role of RIPK3 in modulating mitochondria function, coupled with lipid droplet (LD) architecture in NAFLD.
Approach And Results:
Functional studies evaluating mitochondria and LD biology were performed in wild-type (WT) and Ripk3-/- mice fed a choline-deficient, amino acid-defined (CDAA) diet for 32 and 66 weeks and in CRISPR-Cas9 Ripk3 -null fat-loaded immortalized hepatocytes. The association between hepatic perilipin (PLIN) 1 and 5, RIPK3, and disease severity was also addressed in a cohort of patients with NAFLD and in PLIN1 -associated familial partial lipodystrophy. Ripk3 deficiency rescued impairment in mitochondrial biogenesis, bioenergetics, and function in CDAA diet-fed mice and fat-loaded hepatocytes. Ripk3 deficiency was accompanied by a strong upregulation of antioxidant systems, leading to diminished oxidative stress upon fat loading both in vivo and in vitro. Strikingly, Ripk3-/- hepatocytes displayed smaller size LD in higher numbers than WT cells after incubation with free fatty acids. Ripk3 deficiency upregulated adipocyte and hepatic levels of LD-associated proteins PLIN1 and PLIN5. PLIN1 upregulation controlled LD structure and diminished mitochondrial stress upon free fatty acid overload in Ripk3-/- hepatocytes and was associated with diminished human NAFLD severity. Conversely, a pathogenic PLIN1 frameshift variant was associated with NAFLD and fibrosis, as well as with increased hepatic RIPK3 levels in familial partial lipodystrophy.
Conclusions:
Ripk3 deficiency restores mitochondria bioenergetics and impacts LD dynamics. RIPK3 inhibition is promising in ameliorating NAFLD.
Insights
Receptor-interacting protein kinase 3 (RIPK3) deficiency improves mitochondrial function and lipid droplet dynamics in non-alcoholic fatty liver disease (NAFLD). RIPK3 inhibition shows promise for treating NAFLD.
Area of Science:
- Hepatology and metabolic disease research.
- Mitochondrial biology and lipid metabolism.
- Molecular mechanisms of NAFLD progression.
Background:
- Receptor-interacting protein kinase 3 (RIPK3) is implicated in NAFLD progression, but its precise metabolic role remains unclear.
- Investigating RIPK3's function in modulating mitochondrial function and lipid droplet (LD) architecture is crucial for understanding NAFLD pathogenesis.
Purpose of the Study:
- To elucidate the role of RIPK3 in regulating mitochondrial function within the context of NAFLD.
- To examine how RIPK3 influences lipid droplet (LD) architecture and dynamics in NAFLD.
- To assess the therapeutic potential of RIPK3 inhibition for NAFLD.
Main Methods:
- Utilized wild-type (WT) and Ripk3 knockout (Ripk3-/-) mice on a choline-deficient, amino acid-defined (CDAA) diet.
- Conducted functional studies on mitochondria and LD biology in fat-loaded immortalized hepatocytes (CRISPR-Cas9 Ripk3-null).
- Analyzed the association between RIPK3, perilipin (PLIN) 1 and 5, and NAFLD severity in human patient cohorts.
Main Results:
- Ripk3 deficiency ameliorated mitochondrial dysfunction, enhancing biogenesis, bioenergetics, and antioxidant capacity.
- Mice and hepatocytes lacking Ripk3 exhibited reduced oxidative stress and improved mitochondrial function.
- Ripk3 deficiency led to altered LD morphology (smaller, more numerous) and increased PLIN1/PLIN5 expression, correlating with diminished NAFLD severity in humans.
Conclusions:
- Ripk3 deficiency restores mitochondrial bioenergetics and positively impacts lipid droplet dynamics.
- Targeting RIPK3 presents a promising therapeutic strategy for ameliorating NAFLD.
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