학술논문

S‐adenosylmethionine inhibits la ribonucleoprotein domain family member 1 in murine liver and human liver cancer cells
Document Type
article
Source
Hepatology. 75(2)
Subject
Liver Disease
Hepatitis
Rare Diseases
Cancer
Chronic Liver Disease and Cirrhosis
Digestive Diseases
Liver Cancer
2.1 Biological and endogenous factors
Aetiology
Animals
Autoantigens
Carcinoma
Hepatocellular
Cell Line
Tumor
Cell Movement
Cell Proliferation
Cyclin-Dependent Kinase 2
Humans
Liver Neoplasms
Methionine Adenosyltransferase
Mice
Mice
Knockout
Mutation
Non-alcoholic Fatty Liver Disease
Oligonucleotides
Phosphorylation
Protein Biosynthesis
Proteomics
RNA
Messenger
RNA-Binding Proteins
Ribonucleoproteins
Ribosomal Proteins
S-Adenosylmethionine
TOR Serine-Threonine Kinases
Medical Biochemistry and Metabolomics
Clinical Sciences
Immunology
Gastroenterology & Hepatology
Language
Abstract
Background and aimsMethionine adenosyltransferase 1A (MAT1A) is responsible for S-adenosylmethionine (SAMe) biosynthesis in the liver. Mice lacking Mat1a have hepatic SAMe depletion and develop NASH and HCC spontaneously. Several kinases are activated in Mat1a knockout (KO) mice livers. However, characterizing the phospho-proteome and determining whether they contribute to liver pathology remain open for study. Our study aimed to provide this knowledge.Approach and resultsWe performed phospho-proteomics in Mat1a KO mice livers with and without SAMe treatment to identify SAMe-dependent changes that may contribute to liver pathology. Our studies used Mat1a KO mice at different ages treated with and without SAMe, cell lines, in vitro translation and kinase assays, and human liver specimens. We found that the most striking change was hyperphosphorylation and increased content of La-related protein 1 (LARP1), which, in the unphosphorylated form, negatively regulates translation of 5'-terminal oligopyrimidine (TOP)-containing mRNAs. Consistently, multiple TOP proteins are induced in KO livers. Translation of TOP mRNAs ribosomal protein S3 and ribosomal protein L18 was enhanced by LARP1 overexpression in liver cancer cells. We identified LARP1-T449 as a SAMe-sensitive phospho-site of cyclin-dependent kinase 2 (CDK2). Knocking down CDK2 lowered LARP1 phosphorylation and prevented LARP1-overexpression-mediated increase in translation. LARP1-T449 phosphorylation induced global translation, cell growth, migration, invasion, and expression of oncogenic TOP-ribosomal proteins in HCC cells. LARP1 expression is increased in human NASH and HCC.ConclusionsOur results reveal a SAMe-sensitive mechanism of LARP1 phosphorylation that may be involved in the progression of NASH to HCC.