Associated organisationsCardiff University · University of CambridgeEurope PMC affiliations are not treated as award recipients or mapped locations.
Funding£3.8M
PeriodJul 2025 — Jul 2033
In plain English
AI plain-English summary
A single virus, human cytomegalovirus, deploys over 100 different proteins to disable the immune system, and most of them remain unstudied. This matters because HCMV is a leading cause of birth defects and a dangerous pathogen for people with weakened immune systems, such as transplant recipients or those with HIV. Researchers have long known the virus evades immunity, but the sheer number of viral proteins involved has made systematic study impossible—until now. The team has developed new proteomic techniques that can track how viral proteins alter host cells on a large scale. By combining whole-virus mutagenesis, immune assays, and machine learning, they aim to identify and rank the most critical immune-evasion proteins, then work out exactly how each one disables host defences. If successful, this fundamental science will transform understanding of how HCMV persists in the body. It could also reveal general vulnerabilities that many viruses exploit, enabling researchers to stratify disease risk and develop new therapies—not just for HCMV, but for other pathogens that use similar tactics.
View original technical description
Human cytomegalovirus (HCMV) causes significant morbidity and mortality in immunosuppressed people, and congenitally-acquired HCMV is a major cause of birth defects worldwide. HCMV encodes >100 proteins to manipulate cellular immunity and enhance viral persistence. Studying these proteins has uncovered numerous factors influencing the outcome of infection with HCMV, as well as other viruses. Nonetheless, most of them remain uncharacterised. We have developed unique multiplexed proteomic approaches to determine how viruses modulate host cells. We will now combine these approaches with whole-HCMV mutagenesis, functional immune studies, host genome-scale screens and machine learning, to comprehensively characterise and rank the most critical mechanisms of viral immune-evasion and persistence. We will: 1.Define which HCMV proteins are innate/intrinsic immune evasins; 2.Characterise how each evasin modulates the host proteome; 3.Elucidate the mechanisms of the most potent evasins and their host targets; 4.Determine how HCMV immune evasion can be exploited for biological understanding and clinical benefit. These studies will transform our understanding of HCMV’s pathogenesis and persistence, and provide multiple new insights into human antiviral immunity and the vulnerabilities viruses exploit to undermine host defences. These discoveries will enable us to stratify risk of disease from diverse viruses, and develop new therapies for HCMV and other pathogens.
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