Completed Genetics & Molecular Biology Heart, Stroke & Blood

Transcriptional regulation of self-renewal in human haematopoietic stem cells

In plain English

AI plain-English summary

Bone marrow transplants often fail because scientists cannot yet grow enough blood stem cells in the lab to treat patients reliably. The problem is that no one fully understands how these cells—called haematopoietic stem cells (HSCs)—decide to copy themselves instead of turning into specialised blood cells. This project aims to crack that decision-making process by tracking how the cell’s metabolism and its gene-reading machinery interact. Specifically, the researcher will investigate how nutrients available to the cell influence whether RNA polymerase II pauses or pushes forward along DNA, and how chemical tags on chromatin alter the rate of gene transcription. By manipulating these levers, the team hopes to keep HSCs self-renewing in culture indefinitely. If successful, this work would make it possible to generate large numbers of transplantable HSCs from a patient’s own induced pluripotent stem cells, eliminating the need for donor matches and the risk of graft-versus-host disease. The findings could also illuminate why some cancer stem cells resist chemotherapy by entering a dormant, self-renewing state. This is fundamentally curiosity-driven research into the molecular logic of stemness, but past discoveries about transcriptional pausing and metabolism have already reshaped cancer drug development and regenerative medicine.

View original technical description
Generation of functional HSC from pluripotent cells and robust HSC expansion in culture are limited by our incomplete understanding of the self-renewal process. My goal is to unveil the regulatory pathways that sustain HSC self-renewal, based on modulation of gene expression at pre- (chromatin modification) and co-transcriptional (transcriptional elongation and RNA polymerase II pausing) levels and as directed by the metabolic state of the cell. I will carry out my scientific goals with the following aims: - Determine the regulation of HSC self-renewal though modulation of transcriptional rate and RNA polymerase II activity. - Understand the role of HSC metabolism and nutrient availability in the regulation of the HSC self-renewal gene regulation machinery. - Modulate HSC transcriptional regulation to achieve successful HSC generation in culture. These research avenues will lead to a better understanding of the molecular basis of self-renewal and will provide a foundation to improve the generation and expansion of engraftable human HSCs in culture, in order to fully exploit their potential for clinical applications. This work will expand our current knowledge of the HSC self-renewal process and provide new insights into the molecular features of stemness, with implications for other tissue stem cells and the cancer field.

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Researchers

Alison Lloyd (EPMC Awardee)Vincenzo Calvanese (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Regulating The Self Renewal and Differentiation of Haematopoietic Stem and Progenitor Cells
Understanding molecular mechanisms underlying development of highly regenerative human haematopoietic stem cells
Determining haematopoietic stem cell activity for biomedical discovery
Integrative analysis of metabolism, epigenetics and transcription in human haematopoietic stem cells
A Multi-Omic and Functional Genomic Approach to Investigate the Mechanism of Action of Epigenetic Drugs in Myeloid Malignancies

Original classification

Sir Henry Dale Fellowship

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