Completed Infection & Immunity Lungs & Breathing

Can cross-protective airway-resident immunity be harnessed for SARS-CoV-2 variant protection in UK and Malawian populations with or without HIV infection?

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AI plain-English summary

A person’s immune cells living in their airway lining may be the key to stopping new coronavirus variants before they cause illness—even in people with HIV. This matters because current COVID-19 vaccines, given as injections, generate strong antibodies in the blood but do not reliably stockpile immune cells in the nose and lungs, where the virus first lands. The researchers want to find out whether these “tissue-resident” T and B cells in the airways can recognise and attack multiple variants, and whether that ability differs between people in the UK (high vaccination coverage) and Malawi (high prior infection rates), including those living with HIV. If the work succeeds, it could guide the design of next-generation mucosal vaccines—sprays or drops delivered directly to the nose or lungs—that deliberately build a long-lived, cross-reactive immune garrison in the airways. Such vaccines might protect against future variants without requiring frequent booster injections. The findings could also help predict which populations are most vulnerable to novel variants, allowing public health agencies to target resources more precisely. This is fundamental science: it asks how the immune system works in the tissues where infection actually begins, not just in the bloodstream.

View original technical description
Coinciding with >70% seroprevalence in Malawi and >75% vaccination coverage in the UK, the omicron variant has had lower mortality than the delta variant. Both prior infection and vaccination protect against severe COVID-19, and vaccination combined with infection induces highly cross-reactive hybrid immunity. Pre-existing cross-reactive T cells targeting highly conserved replication proteins abort SARS-CoV-2 infection before PCR positivity or antibody seroconversion, leading to protection against COVID-19. Our unpublished data suggest that this rapid immune-surveillance is attributable to pre-existing cross-reactive SARS-CoV-2 T cells that are highly enriched in the human airways. Furthermore, lung-resident B cells elicit antibodies that cross-neutralise influenza variants and recent work has highlighted the protective potential of mucosal IgA against COVID-19. These data suggest that cross-reactive airway immune responses could be critical in defence against emerging variants. We hypothesise that airway-compartmentalised T and B cells provide an enriched long-lived reservoir of cross-reactive immunity against emerging variants than can protect against COVID-19, and we postulate that is impacted by background exposure, vaccination status and pre-existing HIV infection, in Malawi and UK adults. An understanding of tissue-resident long-lived, broadly cross-reactive immunity is vital for development of next generation mucosal-targeted vaccines and for future studies predicting susceptibility to novel variants.

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Researchers

Henry Mwandumba (EPMC Awardee)Kondwani Jambo (EPMC Awardee)

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Original classification

Directed Call - full

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