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Author Spotlight: Investigating Physiological Functions of Vitamin A Transporters Using HPLC-Based Vitamin A Profiling
Published on: December 27, 2024
Retinoid regulation of antiviral innate immunity in hepatocytes
Noell E Cho1, Bo-Ram Bang1, Purnima Gurung1
1Department of Medicine, USC Research Center for Liver Diseases, Division of Gastrointestinal and Liver Diseases, University of Southern California, Los Angeles, CA.
Insights
Hepatitis C virus (HCV) and alcohol accelerate liver disease. The alcohol dehydrogenase-aldehyde dehydrogenase pathway, crucial for vitamin A metabolism, normally fights viruses. Alcohol disrupts this pathway, worsening HCV progression.
Area of Science:
- Hepatology
- Virology
- Molecular Pathophysiology
Background:
- Persistent Hepatitis C virus (HCV) infection is a major cause of end-stage liver disease (ESLD).
- HCV-infected individuals who are heavy drinkers exhibit accelerated disease progression to ESLD.
- The molecular mechanisms underlying this accelerated progression remain poorly understood.
Purpose of the Study:
- To investigate the role of the alcohol dehydrogenase-aldehyde dehydrogenase (ADH-ALDH) pathway in regulating antiviral innate immunity in hepatocytes.
- To elucidate the molecular pathophysiology linking HCV, alcohol abuse, and accelerated liver disease progression.
Main Methods:
- Analysis of the ADH-ALDH pathway's role in retinoic acid (RA) biogenesis.
- Assessment of RA's influence on interferon-stimulated gene (ISG) expression under basal and stimulated conditions.
- Investigation of ethanol's (EtOH) effect on the ADH-ALDH pathway's antiviral function.
Main Results:
- The ADH-ALDH pathway regulates ISG expression via RA biogenesis, acting as a host antiviral factor.
- Intracellular RA levels significantly impact basal ISG expression and augment ISG induction upon viral infection or interferon exposure.
- Ethanol (EtOH) was found to attenuate the antiviral function of the ADH-ALDH pathway.
Conclusions:
- Retinoic acid (RA) is critical for regulating intracellular antiviral innate immunity in hepatocytes.
- Ethanol's interference with the ADH-ALDH pathway suggests a molecular mechanism for the synergistic negative impact of alcohol and HCV on liver disease progression.
Unlabelled:
Persistent infection of hepatitis C virus (HCV) is one of the leading causes of end-stage liver disease (ESLD), such as decompensated cirrhosis and liver cancer. Of particular note, nearly half of HCV-infected people in the United States are reported to be heavy drinkers. This particular group of patients is known to rapidly progress to the ESLD. Although accelerated disease progression among alcohol abusers infected with HCV is clinically well recognized, the molecular pathophysiology behind this manifestation has not been well elucidated. Hepatocytes metabolize ethanol (EtOH) primarily through two steps of oxidative catabolism in which alcohol dehydrogenase (ADH) and aldehyde dehydrogenase (ALDH) play central roles. The ADH-ALDH pathway also governs the metabolism of retinol (vitamin A) to its transcriptionally active metabolite, retinoic acid (RA). In this study, we defined that the ADH-ALDH pathway serves as a potent antiviral host factor in hepatocytes, which regulates the expression of interferon (IFN)-stimulated genes (ISGs) by biogenesis of RA. ISGs constitute over 300 antiviral effectors, which cooperatively govern intracellular antiviral innate immunity. Our study revealed that intracellular RA levels greatly influence ISG expression under basal conditions. Moreover, RA augments ISG induction in response to viral infection or exposure to IFN in a gene-specific manner. Lastly, our results demonstrated that EtOH attenuates the antiviral function of the ADH-ALDH pathway, which suggests the possibility that EtOH-retinol metabolic competition is one of the molecular mechanisms for the synergism between HCV and alcohol abuse in liver disease progression.
Conclusions:
RA plays a critical role in the regulation of intracellular antiviral innate immunity in hepatocytes. (Hepatology 2016;63:1783-1795).
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