Completed Infection & Immunity Lungs & Breathing

Defining mechanisms of mycobacterial protective immunity using human experimental medicine and murine models

In plain English

AI plain-English summary

Aerosolised BCG vaccine delivered directly into the lungs of healthy volunteers is revealing which immune responses actually protect humans against tuberculosis. Most TB vaccine research relies on mouse studies or blood samples, but TB infects the lungs, and immune responses there can differ from those in blood or in mice. This project uses a safe human infection model—volunteers inhale a replicating mycobacterial strain—to map both innate and adaptive immune responses in the lungs and bloodstream. Researchers then test whether those responses stop mycobacterial growth in the lab, and use mass spectrometry to identify which *M. tuberculosis* proteins the human immune system naturally recognises. Those proteins are then tested in a mouse challenge model. The work directly addresses why decades of TB vaccine development have stalled: we lack a clear picture of what protective immunity looks like in humans. If successful, this could identify the right protein targets and immune mechanisms for a truly effective TB vaccine—something that remains urgently needed, as TB kills over a million people each year. This is fundamental human immunology with a clear translational path.

View original technical description
Progress in the development of an effective TB vaccine is hindered by an incomplete understanding of protective immunity, and by a lack of knowledge as to which proteins from Mycobacterium tuberculosis (M.tb) are protective. Most of our understanding has come from studies in mice, and studies using blood from patients with TB. The lung is the primary site of infection in TB. Lung and blood responses may differ, and murine and human responses can also differ. I have developed a safe human infection model in which BCG, a replicating mycobacterial strain, is delivered by aerosol directly to the lungs of healthy volunteers. I will use this model to define the innate and adaptive, systemic and mucosal immune responses, in humans. I will then use an in-vitro mycobacterial growth inhibition assay to assess whether these responses are protective. I will use this information to identify which components of host immunity are important in protection in humans. We will also use state-of-the-art mass spectrometry to identify which M.tb proteins are naturally presented to the human immune system, and determine if these proteins confer protection in a murine M.tb challenge study. This information will facilitate the development of effective vaccines.

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Researchers

Helen McShane (EPMC Awardee)

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Original classification

Investigator Award in Science

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