Active Cells, Biochemistry & Physiology Genetics & Molecular Biology

Molecular mechanisms of Wnt pathway activation and inactivation.

In plain English

AI plain-English summary

A molecular machine called the destruction complex normally keeps cell growth in check, and this project will reconstruct that machine piece by piece in a test tube to see exactly how it gets switched off. Wnt signalling is one of the body’s core communication systems—it tells stem cells when to divide and when to stay quiet. When it goes wrong, cells can divide uncontrollably, driving many cancers. Despite decades of study, the precise molecular choreography of how a Wnt signal turns the destruction complex off, how that signal crosses the cell membrane, and how the signal is later turned off again has remained unclear because the system is too tangled to study inside living cells. This project strips that complexity away by rebuilding the key components from purified proteins. If successful, this work will produce the first detailed, step-by-step mechanical picture of how a cancer-relevant signalling pathway is activated and silenced at the membrane. That mechanistic understanding is fundamental science—it will not directly yield a drug tomorrow. But knowing exactly which molecular interactions go wrong in tumours could eventually guide the design of therapies that target the pathway at its most vulnerable points, and the same principles may help refine stem cell therapies that depend on controlled Wnt activity.

View original technical description
Wnt signalling pathways are essential in embryonic development and have important functions in tissue regeneration and overall maintenance of tissue homeostasis throughout the lifespan of multicellular organisms. Furthermore, dysregulation of Wnt signalling is associated with many human diseases, most prominently cancer. Understanding how these pathways function at the molecular level is therefore of great importance. Dissecting molecular mechanisms governing the different steps in this pathway has proven difficult, to a large extent due to pathway complexity and absence of suitable research tools able to reduce such complexity. Recent advances 1 demonstrate that a reductionist approach would provide a well-controlled biochemical system to gain detailed functional insights to elucidate the molecular mechanisms governing pathway activation and termination. In this proposal I will address how: (i) the destruction complex is inactivated upon Wnt signalosome formation; (ii) the Wnt signal is transduced across the plasma membrane; (iii) the Wnt signal input at the plasma membrane is terminated. Answers to these questions will deepen our mechanistic understanding of the pathological activation of the Wnt/beta-catenin pathway at the plasma membrane, which contributes to various cancers 2. How the pathway is modulated in normal physiology is of great interest for stem cell therapy and regenerative medicine.

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Researchers

Michael Ranes (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Regulation of the beta-catenin turnover complex
Structural biology of Wnt signalling.
Defining molecular interactions between tumor suppressors and oncogenes in the Wnt signalling pathway
Developing potential therapeutic targets in the Wnt signalling pathway
Tissue-specific regulation of gene expression by Wnt/beta-catenin signalling

Original classification

Career Development Award

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