Low MBOAT7 expression, a genetic risk for MASH, promotes a profibrotic pathway involving hepatocyte TAZ upregulation
Mary P Moore1, Xiaobo Wang1, John Paul Kennelly2
1Department of Medicine, Columbia University Irving Medical Center, New York, New York, USA.
Background And Aims:
The common genetic variant rs641738 C>T is a risk factor for metabolic dysfunction-associated steatotic liver disease and metabolic dysfunction-associated steatohepatitis (MASH), including liver fibrosis, and is associated with decreased expression of the phospholipid-remodeling enzyme MBOAT7 (LPIAT1). However, whether restoring MBOAT7 expression in established metabolic dysfunction-associated steatotic liver disease dampens the progression to liver fibrosis and, importantly, the mechanism through which decreased MBOAT7 expression exacerbates MASH fibrosis remain unclear.
Approach And Results:
We first showed that hepatocyte MBOAT7 restoration in mice with diet-induced steatohepatitis slows the progression to liver fibrosis. Conversely, when hepatocyte-MBOAT7 was silenced in mice with established hepatosteatosis, liver fibrosis but not hepatosteatosis was exacerbated. Mechanistic studies revealed that hepatocyte-MBOAT7 restoration in MASH mice lowered hepatocyte-TAZ (WWTR1), which is known to promote MASH fibrosis. Conversely, hepatocyte-MBOAT7 silencing enhanced TAZ upregulation in MASH. Finally, we discovered that changes in hepatocyte phospholipids due to MBOAT7 loss-of-function promote a cholesterol trafficking pathway that upregulates TAZ and the TAZ-induced profibrotic factor Indian hedgehog (IHH). As evidence for relevance in humans, we found that the livers of individuals with MASH carrying the rs641738-T allele had higher hepatocyte nuclear TAZ, indicating higher TAZ activity and increased IHH mRNA.
Conclusions:
This study provides evidence for a novel mechanism linking MBOAT7-LoF to MASH fibrosis, adds new insight into an established genetic locus for MASH, and, given the druggability of hepatocyte TAZ for MASH fibrosis, suggests a personalized medicine approach for subjects at increased risk for MASH fibrosis due to inheritance of variants that lower MBOAT7.
Insights
Restoring MBOAT7 expression in metabolic dysfunction-associated steatohepatitis (MASH) slows liver fibrosis progression. Loss of MBOAT7 function exacerbates MASH fibrosis by upregulating TAZ and Indian hedgehog (IHH) via altered phospholipids.
Area of Science:
- Hepatology
- Genetics
- Molecular Biology
Background:
- Metabolic dysfunction-associated steatotic liver disease (MASLD) and MASH are significant health concerns.
- The genetic variant rs641738 C>T is linked to MASH and liver fibrosis.
- This variant is associated with reduced expression of the MBOAT7 enzyme, crucial for phospholipid remodeling.
Purpose of the Study:
- To investigate if restoring MBOAT7 expression can halt MASH-related liver fibrosis progression.
- To elucidate the mechanism by which reduced MBOAT7 expression worsens MASH fibrosis.
Main Methods:
- Utilized mouse models of diet-induced steatohepatitis.
- Manipulated hepatocyte MBOAT7 expression (restoration and silencing).
- Analyzed molecular pathways involving TAZ, Indian hedgehog (IHH), and hepatocyte phospholipids.
Main Results:
- Hepatocyte MBOAT7 restoration in MASH mice reduced liver fibrosis progression.
- MBOAT7 silencing exacerbated liver fibrosis but not steatosis.
- MBOAT7 loss-of-function altered hepatocyte phospholipids, promoting a pathway that upregulates TAZ and IHH.
- Human MASH livers with the risk allele showed increased TAZ activity and IHH mRNA.
Conclusions:
- Identified a novel mechanism linking MBOAT7 loss-of-function to MASH fibrosis.
- Provided new insights into the rs641738 genetic locus's role in MASH.
- Suggests targeting hepatocyte TAZ for personalized MASH fibrosis treatment in at-risk individuals.
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