Completed Genetics & Molecular Biology Heart, Stroke & Blood

Cellular mechanisms of haematopoietic lineage commitment

In plain English

AI plain-English summary

Every blood stem cell in the body carries a unique pattern of gene activity that shifts dramatically during aging, infection, and the early stages of leukaemia—and this project will map those shifts cell by cell. The problem is that we do not understand why blood production falters in older people or why some stem cells turn cancerous while others do not. Current knowledge lumps all blood stem cells together, but they are not identical. This project uses advanced single-cell DNA sequencing to measure which genes are active in individual stem cells, then watches how those patterns change under stress hormones, in leukaemia-causing mutations, and in aged cells. If successful, this work will identify distinct types of blood-forming stem cells and reveal how their populations shift with age and stress. That could eventually lead to rational therapies that either boost healthy blood production after infection or blood loss, or suppress the mutant stem cells that drive leukaemia. This is fundamental science—no immediate clinical tool will emerge from this grant alone—but similar single-cell mapping efforts have already transformed how we understand immune responses and tumour evolution, making future targeted treatments possible.

View original technical description
This project will analyse individual blood forming cells and the changes they undergo in cancer, during aging and under stress conditions (blood loss, infection) to understand how the body deals with and responds to these challenges.This will be done by using advanced DNA sequencing technology to measure which genes are expressed in each individual cell, and how this pattern changes in the presence of stress hormones, in stem cells that contain mutations that cause leukaemia, and in aged stem cells. The aim is toidentify different types of of blood forming stem cells, andto find outhow these populations change during aging. We will also analyse alsohow stress signals alterthe composition of the hematopoietic stem cell populations and influences their differentiation pattern. This will enable us to design and develop rational therapies to promote or counteract these changes, as required.

View the original record at the funder ↗

Researchers

Claus Nerlov (Principal Investigator)

Related Research

Grants with similar aims, by meaning.

Cellular and molecular dynamics of healthy ageing in the human Haematopoietic Stem Cell compartment
Haematopoietic stem cells and cancer evolution - from single cells to population dynamics
Delineating the cellular and molecular pathways of hematopoietic stem cell fate decisions
Experimental and mathematical modelling of stem and progenitor cell fate in ageing haematopoiesis.
Hierarchical organization of haematopoietic stem- and progenitor cell populations during steady state and stress haematopoiesis

Original classification

Intramural

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