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Lipid Droplet Isolation for Quantitative Mass Spectrometry Analysis
Published on: April 17, 2017
Liver microsomal triglyceride transfer protein is involved in hepatitis C liver steatosis
Silvia Mirandola1, Stefano Realdon, Jahangir Iqbal
1VIMM-Venetian Institute of Molecular Medicine, Padova, Italy.
Background & Aims:
Hepatic steatosis is frequent in chronic hepatitis C. Several mechanisms might be implicated, including metabolic cofactors and direct viral effects on intracellular lipid pathways. In a transgenic mouse model, hepatitis C virus (HCV) was shown to inhibit microsomal triglyceride transfer protein (MTP) activity, which is essential for hepatic lipoprotein assembly and secretion. No data are available on liver MTP activity in HCV-infected patients. We therefore investigated liver MTP gene expression and its lipid transfer activity in untreated cases infected with the major HCV genotypes showing variable degrees of hepatic steatosis.
Methods:
MTP messenger RNA (mRNA) levels were measured by real-time polymerase chain reaction, and MTP activity was assessed by fluorescent assay in liver biopsy specimens of 58 HCV-positive patients. A set of metabolic and serum lipid markers was also measured at the time of liver biopsies.
Results:
MTP mRNA levels showed a statistically significant (P = .001) inverse correlation with the degree of steatosis, independently of the HCV genotype. MTP mRNA levels also had an inverse correlation with serum insulin (P = .0002), homeostasis model assessment-insulin resistance (HOMA-IR) (P = .005), and body mass index (P = .02) in patients with HCV-1 and HCV-2 and with serum HCV-RNA (P = .02) in HCV-3 patients. Liver MTP-specific activity was significantly reduced in HCV-3 patients compared with those with other HCV genotypes (P = .004) and correlated with reduced serum cholesterol, apo B, and low-density lipoproteins.
Conclusions:
MTP may play a central role in HCV-related steatosis, being modulated by different genotype-specific mechanisms, mainly hyperinsulinemia in non-HCV-3 patients, and more profound and direct virus-related effects in HCV-3-infected individuals.
Insights
Microsomal triglyceride transfer protein (MTP) gene expression inversely correlates with liver fat in hepatitis C patients. MTP activity is reduced in HCV-3, suggesting genotype-specific roles in hepatic steatosis.
Area of Science:
- Hepatology
- Virology
- Metabolic Research
Background:
- Hepatic steatosis is common in chronic hepatitis C.
- Hepatitis C virus (HCV) may affect lipid metabolism via microsomal triglyceride transfer protein (MTP).
- Previous studies in mice showed HCV inhibits MTP, but human data were lacking.
Purpose of the Study:
- To investigate liver MTP gene expression and activity in untreated HCV patients.
- To correlate MTP levels with steatosis severity and metabolic markers.
- To explore genotype-specific differences in MTP modulation.
Main Methods:
- Liver biopsy specimens from 58 HCV patients were analyzed.
- MTP messenger RNA (mRNA) levels were quantified using real-time PCR.
- MTP activity was assessed via fluorescent assay, alongside metabolic and lipid markers.
Main Results:
- MTP mRNA levels inversely correlated with steatosis degree (P = .001), independent of HCV genotype.
- MTP mRNA correlated with insulin resistance markers and BMI in HCV-1/2, and HCV-RNA in HCV-3.
- Liver MTP activity was significantly reduced in HCV-3 patients (P = .004), linked to lower cholesterol and lipoproteins.
Conclusions:
- MTP plays a key role in HCV-related hepatic steatosis.
- Mechanisms involve hyperinsulinemia in non-HCV-3 patients.
- HCV-3 patients exhibit more direct virus-related effects on MTP.
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