Active Genetics & Molecular Biology Cells, Biochemistry & Physiology

Systemic and local control of neural stem cell quiescence and reactivation

In plain English

AI plain-English summary

Most of the brain’s stem cells spend their time in a reversible, dormant state called quiescence, and this project will map the molecular chain of events that wakes them up to make new neurons. The problem is that after injury or in neurodegenerative disease, the brain’s own stem cells often fail to reactivate and repair the damage. Researchers know that signals from other organs—such as the gut or blood—can trigger these cells to start dividing, but the precise sequence of molecular steps from a systemic signal all the way down to a single cell’s genome is unknown. Without that map, it is impossible to design therapies that reliably coax dormant stem cells into action. This is fundamental science. The project uses fruit flies to trace, in a living animal, how a signal travels from one organ to the brain, through the tissue, into the cell, and finally to the genes that switch on proliferation. There is no immediate clinical application. However, similar fundamental work on stem cell control in other tissues has already led to new approaches for regenerating blood and gut lining. A complete molecular roadmap of neural stem cell reactivation could eventually make it possible to regenerate neurons after stroke, spinal cord injury, or in conditions like Parkinson’s disease.

View original technical description
Stem cells in tissues as varied as the blood, gut, and brain spend much of their time in a reversible, mitotically dormant state called quiescence. Quiescent stem cells can be reactivated to resume proliferation in order to fulfil the needs of the organism during development and in adult life. A key point of regulation is the decision to switch between quiescence and proliferation. The response of stem cells to changing physiological conditions is mediated by inter-organ signalling, ensuring that growth and patterning are coordinated throughout the organism and that homeostasis is maintained. Uncovering the molecular mechanisms that control stem cell behaviour is crucial for understanding tissue regeneration under normal and pathological conditions and may make it possible to activate quiescent NSCs to regenerate neurons after injury or disease. My goal is to understand the control of stem cell quiescence and reactivation in the brain, unravelling the steps that lead from systemic signalling, through inter-organ communication, to stem cell proliferation and the generation of new neurons and their circuits. Using Drosophila as a model system, it will be possible to deduce, in vivo, the sequence of events at the level of the organism, tissue, cell, and finally genome.

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Researchers

Andrea Brand (EPMC Awardee)

Related Research

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Regulation of self-renewal and differentiation in the Drosophila CNS.
Exploring the Role of Nuclear Insulin Signalling in Drosophila Neural Stem Cell Reactivation
Investigating molecular dynamics in quiescent stem cells
Regulation of neural regeneration and cell fate in the Central Nervous system of Drosophila.

Original classification

Investigator Award in Science

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