Completed Cells, Biochemistry & Physiology Heart, Stroke & Blood

Epidermal stem and transit amplifying cells

In plain English

AI plain-English summary

A single skin sample contains a hidden hierarchy of cells: a small pool of stem cells that renew the epidermis, and a larger population of "transit amplifying" cells that divide a few times before maturing. This lab is mapping the molecular differences between these two cell types—what proteins they make, which genes are active, and what happens when a stem cell receives the signal to start dividing. The problem is that we still do not fully understand what distinguishes a stem cell from its more committed offspring. Without that knowledge, growing skin grafts in the lab remains partly guesswork, and we lack clear molecular targets for drugs aimed at cancers that arise from uncontrolled stem cell division. If this work succeeds, it could improve the quality of cultured skin grafts used to treat severe burns and chronic wounds. It may also reveal molecules and mechanisms that operate in stem cells elsewhere in the body—in muscle, brain, or bone marrow—because the same fundamental controls are likely shared. And by identifying the molecular switches that trigger stem cell division, the research could point toward new targets for anti-cancer drugs. This is fundamental science with clear, practical endpoints in regenerative medicine and oncology.

View original technical description
Stem cells are frequently in the news. Most of the public debate on stem cells centres on the use of cell lines made from embryos left over from fertility treatments. However, stem cells from adult tissues are already in routine clinical use, for example in bone marrow transplantation. My laboratory studies adult stem cells in the outer covering of the skin, the epidermis. I am studying the molecular make-up of epidermal stem cells and investigating what happens to stem cells when they are stimulated to divide. My work is of practical benefit for three reasons. The first is that it may lead to improvements in the quality of skin grafts that are prepared by growing epidermis in culture. Secondly, it may provide information about stem cells in other adult tissues, such as muscle and brain, because the molecules and mechanisms I study may have similar functions throughout the body. Thirdly, by identifying the molecules that control stem cell division I may find new targets of anti-cancer drugs.

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Researchers

Fiona Watt (Principal Investigator)

Related Research

Grants with similar aims, by meaning.

Human Epidermal Neural Crest Stem Cells
Tracing stem cell lineages in human epithelial tissues
Effect of the topography of the human epidermal-dermal junction in influencing stem cell behaviour
Reciprocal signalling between stem cells and their microenvironment in epidermis and tumours
Kinetics of cell division in normal and malignant epidermis

Original classification

Research Grant

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