Active Cells, Biochemistry & Physiology Infection & Immunity

Resolving HIV-1 transport and host cofactor regulation in the cellular context

In plain English

AI plain-English summary

HIV uses a microscopic protein shell called a capsid to sneak its genetic material into the nucleus of a human cell, and this project will map that journey at the atomic level for the first time. Although HIV is the most thoroughly studied virus in history, a critical gap remains: no one has directly visualised how the capsid interacts with the cell’s own machinery—the skeleton, the nuclear pores, and the DNA-packaging proteins—during infection. Without these structures, scientists cannot fully explain why some HIV strains spread pandemically while others do not, nor can they rationally design drugs that block the virus at its most vulnerable transport steps. The researchers have developed new cryo-electron microscopy techniques that can freeze infected cells at key moments and capture these fleeting super-complexes in 3D. If successful, this work will provide the most complete atomic-level picture of how any virus hijacks host cofactors during infection. This is fundamental science: it will not produce a new drug tomorrow. But understanding the precise molecular handshake between capsid and host could eventually reveal new targets for antiviral therapies and explain why certain HIV strains became global pandemics while close relatives did not.

View original technical description
HIV remains a huge global health problem but is nonetheless the best studied and best understood of all viruses. Here we propose to take our understanding of how HIV interaction with host cell cofactors regulates infection to a completely new level. We plan four transformative structural biology aims 1) How do HIV capsids interface with the cytoskeleton to travel through the cytoplasm? 2) How do capsids interface with nuclear pores for nuclear entry? 3) How do cofactors regulate capsid uncoating? 4) How do capsids interact with chromatin to target integration? We have developed technical advances in cryo- electron microscopy methods to resolve structures of super-complexes of capsids and cofactors including in infected cells frozen at key moments using CryoCLEM in the CL3 laboratory. We will form and test hypotheses using molecular virology, mutating cells or virus and correlating structural effects with infectivity in an iterative approach. Throughout, we will compare pandemic and non-pandemic HIV to understand and map features associated with pandemic HIV spread. This programme promises to redefine our understanding of how pandemic viral infection is regulated and to provide the most complete atomic level understanding of how host interactions regulate infection for any pathogen to date.

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Researchers

Greg Towers (EPMC Awardee)Peijun Zhang (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Investigating the structural basis for HIV-1 hijacking cytoskeletal motor adaptors and in situ studies of microtubule trafficking
What is special about pandemic HIV-1? How capsid cofactor interactions regulate DNA synthesis, innate immune detection and pandemic potential
Assembly Cofactors of HIV-1
Opening new windows into viruses inside the cell by electron cryo-tomography (cryo-ET)
Exploiting species-specific defects in virion assembly to identify cellular co-factors for HIV-1 replication

Original classification

Discovery Award

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