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| Funder | Medical Research Council |
|---|---|
| Recipient Organization | University of Oxford |
| Country | United Kingdom |
| Start Date | Aug 30, 2024 |
| End Date | Aug 29, 2025 |
| Duration | 364 days |
| Number of Grantees | 1 |
| Roles | Principal Investigator |
| Data Source | UKRI Gateway to Research |
| Grant ID | MR/W001500/2 |
Each cell in our body contains the same genetic information, yet this information is decoded in vastly different manners, allowing different cells to acquire distinct roles, which are together needed for the proper functioning of our tissues and organs. Importantly, accurate decoding of the genetic information is often disrupted in diseases such as cancer, allowing the malignant cells to acquire undesired properties such as uncontrollable cell division, evasion of the immune system, or invasion and colonisation of the other parts of the body.
The genetic information is stored in DNA molecules, which reside in a part of cell called nucleus. To allow the stored information to be read and acted upon, an intermediate molecule, called RNA, acts as the messenger carrying the information outside of the nucleus. The RNA then moves around the cell until it is delivered to protein making factories called ribosomes, which use it as a blueprint to produce the many different types of proteins that are needed for distinct cellular functions.
A major unanswered question in cell biology is how RNA molecules move around the cell, and how their distribution inside the cell affects the decoding of the genetic information. Another important question is whether the distribution of RNA molecules is disrupted in cancer cells, and if so, how such disruption can promote different aspects of malignancy.
To address these questions in a comprehensive manner, we have developed a new method to simultaneously monitor the distribution of all RNA and protein molecules inside of the cell. Using this method, we have analysed cells at different stages of becoming cancerous, showing that certain RNA molecules greatly change their distributions as cells become more malignant.
Now, we want to understand how these changes occur at the molecular level, and more importantly, how they assist the cells to become more malignant and aggressive during the course of cancer development. To do this, we will use a variety of state-of-art molecular and cellular approaches to investigate which cancer-related changes in RNA distributions are commonly seen in patients.
We will then reveal the molecular mechanisms that are responsible for mediating these changes. Finally, we will assess how these changes promote malignancy in animal models of cancer. Addressing these questions will not only greatly advance our understanding of RNA distribution inside the cell and its impact on cancer development, but will also have a major impact on development of novel molecular therapeutic strategies that can target cancer cells by modulating the distributions of specific RNA molecules.
University of Oxford
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