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Published on: February 1, 2017
The RNA Binding Proteins YTHDC1 and FMRP Regulate the Nuclear Export of N6-Methyladenosine-Modified Hepatitis B Virus
Geon-Woo Kim1, Hasan Imam1, Aleem Siddiqui1
1Division of Infectious Diseases and Global Public Health, Department of Medicine, University of California, San Diego, La Jolla, California, USA.
Abstract:
YTHDC1 and fragile X mental retardation protein (FMRP) bind N6-methyladenosine (m6A)-modified RNAs and facilitate their transport to the cytoplasm. Here, we investigated the role of these proteins in hepatitis B virus (HBV) gene expression and life cycle. We have previously reported that HBV transcripts are m6A methylated, and this modification regulates the viral life cycle. HBV is particularly interesting, as its DNA genome upon transcription gives rise to a pregenomic RNA (pgRNA), which serves as a template for reverse transcription to produce the relaxed circular DNA that transforms into a covalently closed circular DNA (cccDNA). While m6A modification negatively affects RNA stability and translation of viral transcripts, our current results revealed the possibility that it positively affects pgRNA encapsidation in the cytoplasm. Thus, it plays a differential dual role in the virus life cycle. YTHDC1 as well as FMRP recognize m6A-methylated HBV transcripts and facilitate their transport to the cytoplasm. In cells depleted with YTHDC1 or FMRP, viral transcripts accumulate in the nucleus to affect the viral life cycle. Most importantly, the core-associated DNA and subsequent cccDNA syntheses are dramatically affected in FMRP- or YTHDC1-silenced cells. This study highlights the functional relevance of YTHDC1 and FMRP in the HBV life cycle with the potential to arrest liver disease pathogenesis. IMPORTANCE YTHDC1 and FMRP have been recently implicated in the nuclear export of m6A modified mRNAs. Here, we show that FMRP and YTHDC1 proteins bind with m6A-modified HBV transcripts and facilitate their nuclear export. In the absence of FMRP and YTHDC1, HBV transcripts accumulate in the nucleus to reduce reverse transcription in HBV core particles and subsequently the cccDNA synthesis. Our study shows how m6A binding proteins can regulate the HBV life cycle by facilitating the nuclear export of m6A-modified HBV RNA.
Insights
YTHDC1 and fragile X mental retardation protein (FMRP) bind m6A-modified RNAs, facilitating hepatitis B virus (HBV) RNA export. Their depletion causes nuclear RNA accumulation, impairing HBV replication and cccDNA formation, suggesting therapeutic potential.
Area of Science:
- Molecular Virology
- RNA Biology
- Hepatitis B Virus Pathogenesis
Background:
- Hepatitis B virus (HBV) replication involves intricate RNA processing and transport.
- N6-methyladenosine (m6A) modification regulates RNA fate, but its role in HBV is complex.
- YTHDC1 and fragile X mental retardation protein (FMRP) are known m6A readers involved in mRNA nuclear export.
Purpose of the Study:
- To investigate the role of YTHDC1 and FMRP in hepatitis B virus (HBV) gene expression and life cycle.
- To elucidate how m6A modification and its readers influence HBV pregenomic RNA (pgRNA) metabolism.
- To assess the impact of YTHDC1 and FMRP on HBV cccDNA formation.
Main Methods:
- Analysis of m6A-modified HBV transcripts.
- Depletion of YTHDC1 and FMRP using silencing techniques.
- Assessment of viral RNA localization, encapsidation, reverse transcription, and cccDNA synthesis.
Main Results:
- YTHDC1 and FMRP bind to m6A-modified HBV transcripts, facilitating their cytoplasmic export.
- Silencing YTHDC1 or FMRP leads to nuclear accumulation of HBV transcripts, reducing pgRNA encapsidation and reverse transcription.
- Core-associated DNA and cccDNA synthesis are significantly impaired in YTHDC1- or FMRP-depleted cells.
Conclusions:
- YTHDC1 and FMRP play a crucial role in the HBV life cycle by mediating the nuclear export of m6A-modified HBV RNA.
- m6A modification exhibits a dual role in HBV, potentially promoting pgRNA encapsidation while affecting RNA stability/translation.
- Targeting YTHDC1 and FMRP could offer a novel strategy for inhibiting HBV replication and managing liver disease.
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