Completed Cells, Biochemistry & Physiology Cancer

Dissecting robustness mechanisms via signalling adaptation and trafficking plasticity during developmental and pathological cell migration

In plain English

AI plain-English summary

Cells that crawl through the body during development, immune responses, and cancer spread must keep moving in the right direction even when their chemical signals fluctuate or their internal machinery changes. This project will dissect how migrating cells achieve that stability—a property called robustness—by studying zebrafish embryos and cultured breast cancer cells. The problem is that biologists know robustness exists but do not understand the molecular circuits and membrane-trafficking switches that make it work. Without that knowledge, it is impossible to predict when a cancer cell will successfully invade tissue or why an immune cell sometimes fails to reach a wound. The researcher will combine live imaging, genetics, biochemistry, and phosphoproteomics to map the network architecture that allows cells to adapt to changing cues. They will also test whether breast cancer cells hijack these same robustness mechanisms to spread. This is fundamental science. It will not produce a drug or diagnostic tomorrow. But understanding how cells maintain direction under stress could eventually reveal vulnerabilities in cancer invasion—points where a tumour’s own robustness mechanisms become its weakness. Similar work on cellular adaptation has previously uncovered principles now used in tissue engineering and regenerative medicine.

View original technical description
Robustness mechanisms are ubiquitous in biological systems where they act to ensure a stable outcome despite intrinsic (genetic) and extrinsic (environmental) variabilities. However, the underlying mechanisms are often unclear. In my proposed research, I will investigate the mechanistic basis of how systems deal with change in the context of cell migration during development, immune responses, and cancer invasion. Cell migration models I will use for my study include: the posterior lateral line primordium (pLLP) migration in development and macrophage recruitment during wound immune response in zebrafish, and invasion of cultured cancer cells. The main goals of the proposed original project are: (1) Characterizing the molecular mechanisms and network architectural designs that enable robust adaptation during cell migration in a multicellular organism, (2) Analysing the requirement of regulated membrane trafficking switching during chemotactic adaptation, and (3) Quantitatively defining the role of dynamic buffering in breast cancer spreading. To achieve these goals, an interdisciplinary approach will be taken, combining live imaging, genetics, biochemistry and phosphoproteomics. I will generate datasets bridging molecular, cellular, and tissue scales to obtain a systems level understanding of adaptive responses. This work will have broad implications for understanding chemotactic adaptation in development, physiology and disease.

View the original record at the funder ↗

Researchers

Mie Wong (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Systems analysis of robustness mechanisms in collective cell migration
Computational framework for modelling immune cell migration in tissue repair and the origins of cancer
Mechanical regulation of collective cell migration and wound healing
A novel super-resolution microscopy approach to investigate the role of actin filament branching in cancer cell migration.
Molecular Control of Adhesion-Free Migration

Original classification

Sir Henry Dale Fellowship

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