Active Cells, Biochemistry & Physiology Infection & Immunity

Functional Analysis of Tyrosine Phosphatases in Cytoskeletal Regulation and Virus Spread

In plain English

AI plain-English summary

A virus hijacks the cell's own signalling machinery to build the actin filaments it needs to spread, and three overlooked proteins called tyrosine phosphatases are the key to stopping it. Cells rely on a delicate balance of chemical switches—kinases add phosphate tags to proteins, phosphatases remove them. For decades, research has focused almost entirely on the kinases, leaving the phosphatases poorly understood. This project targets that blind spot. Using Vaccinia virus as a tool, the researcher has already identified three phosphatases that control actin polymerisation, the process viruses exploit to move between cells. The plan is to map exactly how these phosphatases work: what they bind to, which substrates they act on, and where they localise in living organisms, using quantitative microscopy, protein interaction screens, and *C. elegans* genetics. This is fundamental science. There is no immediate clinical application. But understanding how phosphatases regulate the cytoskeleton could eventually open new routes for antiviral therapies, cancer treatments, and other diseases where phosphotyrosine signalling goes awry. Past work on kinases led directly to blockbuster drugs; this research lays the groundwork for the other half of the switch.

View original technical description
Phosphotyrosine-based signal transduction is fundamental to cell growth, migration and communication. Aberrant phosphotyrosine signalling, by dysregulation of pathways or subversion by pathogens, is implicated in a variety of human diseases. While such signalling requires a balance between kinase and phosphatase activities, research in this area has thus far heavily focused on tyrosine kinases. Tyrosine phosphatases, a large and heterogenous superfamily of proteins, are relatively understudied and our knowledge of their in vivo functions, interactors and mechanisms of action is highly limited. Using Vaccinia virus that hijacks host phosphotyrosine signalling to the cytoskeleton, I have identified three tyrosine phosphatases that regulate actin polymerisation. Here I propose to deeply characterise these model phosphatases using a combination of quantitative microscopy, protein interaction analyses and powerful C. elegans genetics. I will identify their binding partners and substrate-interaction motifs in healthy and virus- infected mammalian cells. I will measure the quantitative impact of these phosphatases on signalling dynamics using Vaccinia virus as a platform. Finally, I will determine their roles and localisation in a live organism. My research will generate fresh knowledge on how cellular tyrosine phosphatases perform their functions, paving roads for new therapeutic approaches in viral infections, cancers and more.

View the original record at the funder ↗

Researchers

Angika Basant (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Structural and mechanistic regulation of phosphorylation-dependent APC/C activation
Harnessing surface phosphatases to define and modulate signal transduction in cancer
Control and enzymatic activation of the APC/C ubiquitin ligase system
A comprehensive analysis of yeast Elongator phosphorylation and its functional consequences
Systematic molecular and cell biological analysis of MST kinase signalling in cell death cell cycle and centrosome biology

Original classification

Career Development Award

Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.