Thursday, August 06, 2026

 

A lesser-known SARS-CoV-2 protein may offer clues to long COVID symptoms



UCLA study links nucleocapsid to immune overdrive and weakened blood-vessel barriers in heart models




University of California - Los Angeles Health Sciences

Dr. Melody Li with members of her lab. 

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Dr. Melody Li, centered, gestures to a benchtop instrument while four masked researchers in blue lab coats watch closely. A stack of clear culture plates sits on the lab bench beside them.

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Credit: Timothy Archibald/UCLA Broad Stem Cell Research Center





Six years after the height of the COVID-19 pandemic, scientists are still uncovering surprising ways the virus can wreak havoc on the body.

A new UCLA study published in Science Advances describes a previously unrecognized way the SARS-CoV-2 nucleocapsid protein — a structural protein less familiar than the spike protein that has dominated public attention and much vaccine research — can push the immune system into dangerous overdrive.

The nucleocapsid protein's main job is to package and protect the virus's genetic material. Like several other coronavirus proteins, it's also known to suppress the body's early antiviral defenses, helping the virus get a foothold.

Scientists led by virologist Melody Li set out to see whether SARS-CoV-2's version of this immune-dampening protein worked the same way as those found in SARS and MERS, earlier coronaviruses known to cause severe disease.

“Coronaviruses are notorious for encoding proteins that antagonize the body's natural antiviral defenses,” said Li, an associate professor of microbiology, immunology and molecular genetics and member of the UCLA Broad Stem Cell Research Center. “When SARS-CoV-2 first appeared, almost nothing was known about it, so we wanted to find out whether it was using the same playbook.”

A hidden protein with an outsized effect

The project, initially funded through a COVID-19 seed grant with UCLA colleague Alexander Hoffmann, led the researchers to a less explored question: how the nucleocapsid protein behaves inside macrophages. These immune cells patrol tissues for signs of infection and release chemical signals called cytokines and chemokines to rally the body’s defenses.

What they found upended their original hypothesis. The nucleocapsid protein appeared to be a “double-edged sword,” Li said. While it still suppressed signals that trigger an early antiviral response, it also amplified inflammatory pathways in macrophages, which can fuel tissue-damaging immune responses.

“We set out looking for a protein that suppresses the immune response, and we found the opposite,” said Zhenlan Yao, co-first author of the study and a former postdoctoral researcher in Li’s lab, who will soon begin a research assistant professorship at Hong Kong University. “It was surprising, but it lines up with what we already know about COVID-19: The virus dampens the immune response early on, then overactivates it later — and that’s when a lot of the tissue damage happens.”

The researchers examined nucleocapsid proteins from several SARS-CoV-2 variants, as well as from SARS-CoV-1 and MERS-CoV, and found the pro-inflammatory effect was conserved across pathogenic coronaviruses — with the Delta variant’s version proving the most inflammatory by far.

“It’s a bit like a thief trying to slip past a bank’s security system, but instead of staying quiet, it trips the alarm,” Li said. “We don’t think these viruses intend to do this — a virus’s whole goal is to spread, not to make its host severely sick. But this looks like an unintended side effect that in the case of COVID, it ends up fueling the disease.”

In the body, that immune “alarm” does not stay confined to macrophages. When these cells become overactivated, they release inflammatory signals that can affect nearby tissues, including the cells that line blood vessels.

Cracks in the body's protective barriers

To investigate whether those effects could help explain COVID-19 complications involving the brain and heart, the team turned to two human cell-based models: a stem cell-derived model of the blood-brain barrier and a model of the coronary artery lining.

These barriers are made of endothelial cells, which line blood vessels and help control what passes from the bloodstream into surrounding tissues. In the brain, this barrier is especially tight, helping protect delicate neural tissue from pathogens, toxins and other harmful substances.

When the researchers exposed both models to fluid containing signals from macrophages producing the Delta variant’s nucleocapsid protein, the heart barrier broke down significantly — a phenomenon known as vascular leakage.

Because the heart depends on tight, selective blood vessel linings to function normally, the finding points to a possible mechanism that could help the cardiac injury seen in severe cases of COVID-19.

Rethinking how severe COVID-19 is treated

The findings also suggest a path toward more targeted COVID-19 treatments.

Severe cases can be treated with broad anti-inflammatory drugs like corticosteroids, which dampen harmful inflammation but do not specifically target the viral mechanisms that may be driving it. A therapy or vaccine that targets the nucleocapsid protein, Li said, could potentially rein in the hyperinflammation more precisely — and, in doing so, help protect the blood vessel barriers that support brain and heart health.

And because macrophages play a similar double-edged role in many infections beyond COVID-19, she said, the same mechanism could turn out to matter well beyond this one virus.

“It’s critical to keep studying COVID-19 so that we can constantly improve patient care — not everyone responds well to vaccines, and people who are immunocompromised often have limited treatment options,” said Pablo Alvarez, co-first author of the study and a former graduate student in Li’s lab. “These studies can also help us prepare for future coronavirus outbreaks.”

This work was supported by the National Institute of Allergy and Infectious Diseases, the W.M. Keck Foundation and the American Heart Association. Additional awards were provided by the David Geffen School of Medicine at UCLA; the UCLA Health Jonsson Comprehensive Cancer Center and UCLA Broad Stem Cell Research Center Ablon Scholars Program; and the UCLA Department of Microbiology, Immunology and Molecular Genetics.

Additional UCLA authors include Carolina Chavez, Yennifer Delgado, Prashant Kaushal, David Austin, Qian Li, Yanying Yu, Anne Zaiss, Vaithilingaraja Arumugaswami, Jeffrey Hsu, Robert Damoiseaux, Mehdi Bouhaddou and Alexander Hoffmann. Qiang Din of the Tsinghua University also contributed to this study.


Severe COVID-19 reactivates dormant viruses, study finds


Better understanding of how these activated viruses contribute to COVID-related outcomes could help physicians better predict potential complications and improve treatment for patients with severe COVID infection




Boston Children's Hospital






Chronically infecting viruses — such as Epstein Barr, cytomegalovirus (CMV), and herpes virus — are common, and often innocuous and asymptomatic. However, emerging evidence suggests their reactivation may contribute to autoimmune disease and other chronic conditions. In a new Nature study involving 15 biomedical research institutions across the United States, Boston Children’s Hospital researchers and their collaborators have discovered that COVID-19 reactivates certain dormant viruses in hospitalized patients. These findings expand understanding of chronically infecting viruses and could inform development of strategies to combat their reactivation.

Physician scientist Ofer Levy, MD, PhD, director of the Precision Vaccines Program (PVP) at Boston Children’s, served as a site principal investigator for this National Institutes of Health (NIH)-funded study of 1,154 patients across 20 U.S. biomedical research hospitals that was designed to define biomarkers of COVID severity and outcomes. The research team used genomic sequencing to look for reactivated viruses in the patients since long-cleared viral infections can sometimes reawaken in times of stress.

 “This is the largest and most comprehensive biomarker study of COVID-19, in which we followed more than one thousand patients, collected more than 200,000 samples, and generated more than 1 billion data points over the course of a year for this public resource,” says Joann Diray Arce, PhD, who leads the PVP-Data Management and Analysis Core and is the lead of the study’s Clinical and Data Coordinating Center.

The research team detected 11 reactivated viruses in patients within the first 40 days from admission, with the most detected ones being Epstein-Barr, herpes simplex 1, cytomegalovirus, and Anelloviridae viruses. Notably, reactivation of Anelloviridae, a poorly understood family of viruses typically latent in about 90 percent of the population, was associated prominently with long-term physical disability and long COVID.

“This association with long COVID is an interesting finding as millions around the world suffer from this chronic condition,” says Levy. “Having new insight as to the molecular and viral associations with long COVID could point the way to better understanding and ultimately better diagnostics and treatments.”

In an analysis of the blood samples from the patients, Epstein-Barr and cytomegalovirus seemed to activate in response to inflammation rather than immune system suppression.  The researchers say this is a surprising new mechanism, challenging the prevailing view that chronic viral reactivation is primarily a consequence of immunosuppression. This finding demonstrates that reactivations occur frequently in apparently immunocompetent individuals during severe illness and in association with increased systemic inflammation.

“Although many no longer think of COVID being a problem, up to 50,000 Americans died of COVID in 2025-2026 respiratory season and some estimates suggest over 10 million U.S. adults suffer from long COVID,” says Levy. “We need to help these patients recover with the best outcomes.” He adds “Moreover, sooner or later, there may be another coronavirus pandemic, which means we need to learn all the lessons we can from COVID-19 to be better prepared.”

Next steps for this work will be to uncover how the immune system responds to these viruses over the course COVID-19, with the aim of identifying effective therapeutics and establishing the optimal timing of any interventions.

Other Boston Children’s researchers on the study include Jing Chen, PhD, Annmarie Hoch, Al Ozonoff, PhD, Kinga Smolen, PhD, and Hanno Steen, PhD.

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