Breaking 19:00 Morgan Stanley sees momentum stocks recovering as investors return to quality companies 18:18 Visa strengthens digital fraud defense with $2.4 billion BioCatch acquisition 17:10 Pentagon signs agreements to expand THAAD and Patriot PAC-3 missile production 15:51 Sam Altman reveals his TikTok experience and concerns over digital addiction 13:51 The rising Wall Street star defeated by risks: The collapse of the Situational Awareness fund 13:24 Trump Highlights Morocco as a Key U.S. Security Partner in Regional Stability 13:13 Survey shows 70% of Americans believe the economy is in poor condition 12:45 Aircraft window shortages push planemakers and airlines to tighten supply management 12:33 Capital One confirms closure of Trump Organization bank accounts after review 12:00 Japan and the United States intervene together to support the yen for the first time in 15 years 11:06 Spider-Man: Brand New Day spins record-breaking $928 million global box office debut 08:45 Wildfires devastate Washington state as hundreds of homes and buildings are destroyed 08:42 U.S. congressional report highlights Ceuta and Melilla issue and calls for diplomatic dialogue 08:00 Oil prices tumble over 5% as US-Iran talks revive hopes for Middle East de-escalation 07:45 US approval of new pesticides sparks PFAS concerns among scientists and environmental groups 07:30 US Justice chief drops controversial compensation fund to advance Senate confirmation 07:00 Brazil’s Lula launches bid for fourth and final presidential term at age 80

Yale researchers identify circular RNA that boosts HIV replication

Saturday 14 March 2026 - 09:50
By: Dakir Madiha
Yale researchers identify circular RNA that boosts HIV replication

Scientists at Yale University have discovered that HIV produces a circular RNA molecule that helps the virus activate its genes and replicate more efficiently. The finding reveals a previously unknown layer of HIV biology and could open new avenues for antiviral therapies.

The study, published on March 12 in Nature Microbiology, identified a loop-shaped RNA molecule named circHIV. Researchers detected the molecule in the plasma of 18 people living with HIV as well as in infected primary cells and T-cell lines. Experiments showed that circHIV binds to the HIV-1 Tat protein and enhances transcription from the viral promoter, enabling the virus to increase its own gene expression.

The research was led by immunologist Grace Chen, an assistant professor of immunobiology and genetics at Yale School of Medicine. Chen’s laboratory focuses on circular RNAs, a class of RNA molecules that form closed loops rather than the linear strands commonly produced during gene expression.

Chen began the project in 2019 with graduate student Prisca Obi and associate research scientist Lichong Yan, who served as co first authors of the study. The team suspected HIV-1 could generate circular RNA because, unlike most RNA viruses, it integrates into the host genome and uses the host cell’s transcription and splicing machinery.

Using RNA sequencing in cell lines containing integrated HIV-1 genomes, the researchers identified nine viral circular RNAs distributed across the HIV genome. They selected the most abundant molecule for detailed analysis and named it circHIV.

Functional experiments demonstrated that reducing circHIV levels lowered viral infection rates. In contrast, introducing a synthetic version of the circular RNA increased viral replication. Further analysis revealed that circHIV and another RNA element known as TAR both bind to the Tat protein independently rather than competing for the same binding site. This observation suggests Tat may contain a previously unidentified domain capable of interacting with circular RNA.

The findings challenge a long standing assumption that retroviruses generate only linear RNA transcripts. Circular RNAs have previously been identified in large DNA viruses such as herpesviruses and Epstein-Barr virus, but evidence for similar molecules in RNA viruses has been limited.

A separate 2025 study by researchers at Florida Atlantic University reported circular RNAs produced by HIV-1 that act as molecular “sponges” for host microRNAs. The Yale research is the first to demonstrate that a viral circular RNA directly promotes HIV transcription by interacting with the Tat protein.

Circular RNAs are structurally stable because they lack the free ends that make linear RNA vulnerable to degradation. This stability allows them to persist longer in cells, a property that could make them useful as diagnostic biomarkers or therapeutic targets.

The Yale team also observed that circHIV becomes packaged into HIV-1 virions and is present both in the nucleus and the cytoplasm of infected cells. These characteristics suggest the molecule may play multiple roles in the viral life cycle.

Progress on the project slowed during the COVID-19 pandemic, which interrupted laboratory work shortly after the researchers confirmed the circular RNA back-splicing junction in February 2020. According to the team, members of the laboratory volunteered their own blood samples as negative controls to help complete the experiments.


  • Fajr
  • Sunrise
  • Dhuhr
  • Asr
  • Maghrib
  • Isha

This website, walaw.press, uses cookies to provide you with a good browsing experience and to continuously improve our services. By continuing to browse this site, you agree to the use of these cookies.