Wan-Seog Shim,Seulah Lee,Bakhovuddin Azamov,Chanhee Lee,Yeowon Kang,Kwang Min Lee,Changwan Hong,Sang-Mo Kwon,Koanhoi Kim,Dongjun Lee,Jong Hyuk Yoon,Parkyong Song
{"title":"蛋白质组学分析显示27-羟基胆固醇抑制肝细胞的甲羟戊酸和糖酵解途径。","authors":"Wan-Seog Shim,Seulah Lee,Bakhovuddin Azamov,Chanhee Lee,Yeowon Kang,Kwang Min Lee,Changwan Hong,Sang-Mo Kwon,Koanhoi Kim,Dongjun Lee,Jong Hyuk Yoon,Parkyong Song","doi":"10.1042/bcj20253035","DOIUrl":null,"url":null,"abstract":"27-Hydroxycholesterol (27OHC), an endogenous oxysterol, has been implicated in various physiological processes, including regulation of estrogen receptor activity and lipid metabolism. However, studies on how 27OHC affects the metabolic changes associated with lipogenesis inhibition in the liver remain limited. This study aimed to investigate the systemic effects of 27OHC on hepatocytes through a comparative proteomic analysis of the proteomes in the 27OHC-treated AML12 cells. Ingenuity Pathway Analysis revealed significant downregulation of certain metabolic pathways, such as cholesterol biosynthesis and glycolysis, which are highly associated with lipid metabolism, following 27OHC treatment. Furthermore, in vitro biochemical analysis revealed significant inhibition of the expression of genes associated with the mevalonate pathway and a decrease in the total cellular cholesterol levels in AML12 cells and primary hepatocytes following 27OHC treatment. In addition, it was observed that 27OHC significantly reduced the transcripts levels of critical glycolytic enzymes such as aldolase, phosphofructokinase, and pyruvate kinase. This inhibition resulted in decreased lactate production and extracellular acidification (ECAR), indicating suppression of glycolytic flux. Concurrently, we proved that downregulation of reactive oxygen species generation and HIF-1α expression following 27OHC treatment partially contributed to glycolysis inhibition. Overall, we demonstrated the inhibitory effects of 27OHC on the hepatic mevalonate pathway and glycolysis, revealing a novel mechanism by which 27OHC regulates lipid metabolism. As the accumulation of cholesterol and lipids promotes hepatic fatty liver disease and increased glycolysis contributes to triacylglycerol maturation, the suppressive effects of 27OHC on hepatic lipid and glucose metabolism may contribute to protect against fatty liver development.","PeriodicalId":8825,"journal":{"name":"Biochemical Journal","volume":"707 1","pages":""},"PeriodicalIF":4.3000,"publicationDate":"2025-07-22","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Proteomic analysis reveals inhibition of mevalonate and Glycolysis pathways in hepatocytes by 27-hydroxycholesterol.\",\"authors\":\"Wan-Seog Shim,Seulah Lee,Bakhovuddin Azamov,Chanhee Lee,Yeowon Kang,Kwang Min Lee,Changwan Hong,Sang-Mo Kwon,Koanhoi Kim,Dongjun Lee,Jong Hyuk Yoon,Parkyong Song\",\"doi\":\"10.1042/bcj20253035\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"27-Hydroxycholesterol (27OHC), an endogenous oxysterol, has been implicated in various physiological processes, including regulation of estrogen receptor activity and lipid metabolism. 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This inhibition resulted in decreased lactate production and extracellular acidification (ECAR), indicating suppression of glycolytic flux. Concurrently, we proved that downregulation of reactive oxygen species generation and HIF-1α expression following 27OHC treatment partially contributed to glycolysis inhibition. Overall, we demonstrated the inhibitory effects of 27OHC on the hepatic mevalonate pathway and glycolysis, revealing a novel mechanism by which 27OHC regulates lipid metabolism. 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Proteomic analysis reveals inhibition of mevalonate and Glycolysis pathways in hepatocytes by 27-hydroxycholesterol.
27-Hydroxycholesterol (27OHC), an endogenous oxysterol, has been implicated in various physiological processes, including regulation of estrogen receptor activity and lipid metabolism. However, studies on how 27OHC affects the metabolic changes associated with lipogenesis inhibition in the liver remain limited. This study aimed to investigate the systemic effects of 27OHC on hepatocytes through a comparative proteomic analysis of the proteomes in the 27OHC-treated AML12 cells. Ingenuity Pathway Analysis revealed significant downregulation of certain metabolic pathways, such as cholesterol biosynthesis and glycolysis, which are highly associated with lipid metabolism, following 27OHC treatment. Furthermore, in vitro biochemical analysis revealed significant inhibition of the expression of genes associated with the mevalonate pathway and a decrease in the total cellular cholesterol levels in AML12 cells and primary hepatocytes following 27OHC treatment. In addition, it was observed that 27OHC significantly reduced the transcripts levels of critical glycolytic enzymes such as aldolase, phosphofructokinase, and pyruvate kinase. This inhibition resulted in decreased lactate production and extracellular acidification (ECAR), indicating suppression of glycolytic flux. Concurrently, we proved that downregulation of reactive oxygen species generation and HIF-1α expression following 27OHC treatment partially contributed to glycolysis inhibition. Overall, we demonstrated the inhibitory effects of 27OHC on the hepatic mevalonate pathway and glycolysis, revealing a novel mechanism by which 27OHC regulates lipid metabolism. As the accumulation of cholesterol and lipids promotes hepatic fatty liver disease and increased glycolysis contributes to triacylglycerol maturation, the suppressive effects of 27OHC on hepatic lipid and glucose metabolism may contribute to protect against fatty liver development.
期刊介绍:
Exploring the molecular mechanisms that underpin key biological processes, the Biochemical Journal is a leading bioscience journal publishing high-impact scientific research papers and reviews on the latest advances and new mechanistic concepts in the fields of biochemistry, cellular biosciences and molecular biology.
The Journal and its Editorial Board are committed to publishing work that provides a significant advance to current understanding or mechanistic insights; studies that go beyond observational work using in vitro and/or in vivo approaches are welcomed.
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