Wednesday, June 16, 2021

Exposure To Common Cold Virus May Protect From COVID-19: Study

Exposure to the virus that causes common cold can provide protection against infection by the SARS-CoV-2 virus behind COVID-19, according to a study.

The research, published on Tuesday in the Journal of Experimental Medicine, found that rhinovirus, the common respiratory virus, jump-starts the activity of interferon-stimulated genes.

These genes trigger early-response molecules in the immune system which can stop reproduction of the SARS-CoV-2, the virus that causes COVID-19, within airway tissues infected with the cold, the researchers said.

Triggering these defences early in the course of COVID-19 infection holds promise to prevent or treat the infection, said senior study author, Ellen Foxman, assistant professor at the Yale School of Medicine in the US.

One way to do this, Ms Foxman said, is by treating patients with interferons, an immune system protein which is also available as a drug.

"But it all depends upon the timing," she said.

Previous work showed that at the later stages of COVID-19, high interferon levels are associated with worse disease outcomes, and may fuel overactive immune responses.

However, recent genetic studies show that interferon-stimulated genes can also be protective in cases of COVID-19 infection.

The researchers wanted to study this defence system early in the course of COVID-19 infection.

They decided to study whether rhinoviruses would have beneficial impact against the SARS-CoV-2 virus.

The team infected lab-grown human airway tissue with the virus and found that for the first three days, viral load in the tissue doubled about every six hours.

However, the researchers found that reproduction of the COVID-19 virus was completely stopped in tissue which had been exposed to rhinovirus.

If antiviral defences were blocked, the SARS-CoV-2 could reproduce in airway tissue previously exposed to rhinovirus.

The same defences slowed down SARS-CoV-2 infection even without rhinovirus, but only if the infectious dose was low.

This suggests that the viral load at the time of exposure makes a difference in whether the body can effectively fight the infection, the researchers noted.

The team of researchers also studied nasal swab samples from patients diagnosed close to the start of infection.

They found evidence of rapid growth of SARS-CoV-2 in the first few days of infection, followed by activation of the body's defences.

According to their findings, the virus typically increased rapidly for the first few days of infection, before host defences kicked in, doubling about every six hours as seen in the lab.

In some patients the virus grew even faster, the researchers found.

"There appears to be a viral sweet spot at the beginning of COVID-19, during which the virus replicates exponentially before it triggers a strong defence response," Ms Foxman said.

She explained that interferon treatment holds promise but it could be tricky, because it would be mostly effective in the days immediately after infection, when many people exhibit no symptoms.

In theory, interferon treatment could be used as a preventive in people at high risk who have been in close contact with others diagnosed with COVID-19, they said.

Trials of interferon in COVID-19 are underway, and so far show a possible benefit early in infection, but not when given later.

These findings may help explain why at times of year when colds are common, rates of infections with other viruses such as influenza tend to be lower, Ms Foxman added.
 

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Monday, May 04, 2020

Covid-19 virus infects, replicates in human intestinal cells

The novel coronavirus can infect and replicate in cells that line the inside of the human intestines, according to a study that could explain why some patients with COVID-19 experience gastrointestinal symptoms.

The finding, published in the journal Science, shows that the intestines are a target organ for the SARS-CoV-2 virus.

Studies have shown that the virus enters epithelial cells in the lungs by exploiting an enzyme called ACE2, allowing it to replicate and spread further, according to the researchers, including those from Erasmus Medical Center in the Netherlands.

The ensuing damage results in some of the respiratory symptoms that COVID-19 is known for, which can range from coughing and shortness of breath to pneumonia in more severe cases, they said.

The researchers noted that preliminary observations suggest that the virus may also infect cells in the gut.

Patients sometimes show gastrointestinal symptoms like diarrhea, and researchers know that gut epithelial cells also harbour ACE2, they said.

The team generated three dimensional (3D) structures that display all cell types of the human small intestinal epithelium and grew them in four different culture conditions.

The human small intestinal organoids grown in different conditions expressed varying amounts of ACE2, and could be infected with SARS-CoV-2, the researchers said.

Using electron microscopy, they discovered that the virus infected both mature and progenitor enterocytes, which are intestinal absorptive epithelial cells that line the inner surface of the intestines.

The researchers also found that the virus provoked the activity of genes involved with antiviral responses.

The rates of infection were similar across the organoid models, indicating that even low quantities of ACE2 may be enough for the virus to infect epithelial cells, they said. 


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