The adult brain contains hidden pockets of stem cells that continuously generate new neurons throughout life, but scientists still do not know exactly what these new cells do or whether they can be coaxed into repairing damage from stroke, multiple sclerosis, or motor neuron disease. This matters because neurodegenerative conditions destroy specific types of neurons that the brain’s natural stem cells do not normally produce. Researchers have recently discovered that the brain contains not one but several distinct stem cell subtypes, each specialised for making different kinds of neurons in the olfactory bulb. This raises a critical question: might other, undiscovered stem cell subtypes exist with the potential to generate the neurons lost in disease? The project will genetically engineer mice so that different stem cell subtypes glow with distinct fluorescent labels, allowing researchers to track each subtype’s behaviour separately—both in the living brain and in a culture dish—when confronted with different forms of damage. This is fundamental science. It will not produce a therapy tomorrow. But understanding which stem cell subtypes exist and what they can and cannot do is a necessary first step toward any future attempt to “tweak” them into repairing damaged brain tissue. Similar fundamental discoveries about adult neurogenesis have already reshaped our understanding of brain plasticity and memory.
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One of the big surprises in neurobiology recently has been the realization that there are pockets of stem cells in the adult brain that continuously generate new neurons throughout life, both in rodents and humans. The majority of ?adult-born? neurons populate the olfactory bulb (a brain structure required for recognition and memory of odors) and the hippocampus (an enigmatic structure involved in laying down memories of places and events). We are still in the dark about the precise role of the new neurons. Nevertheless, there is widespread excitement that, because stem cells can generate some types of neurons under normal conditions, they might have a wider potential to generate neurons to replace those that are lost through injury or neurodegenerative diseases like Parkinson?s or Alzheimer?s. This is a challenging idea because, as far as we know, the stem cells do not normally make the kinds of neurons that are destroyed in these diseases. The question is, do they have the potential to make the neurons we want, if only we could learn how to ?tweak? them? We and others recently discovered that there is not just one kind of stem cell in the healthy brain but several, possibly many, that have slightly different properties and that specialize in making different kinds of neurons in the olfactory bulb. This is encouraging because it implies that there might be yet more types of stem cells that we don?t know about yet, perhaps some with the properties we are looking for. On the other hand, it complicates the picture because we now have more cells to sort through. In the programme of work we describe here we make a start towards understanding the different behaviours we might expect from different stem cell subtypes when they are confronted with different forms of damage such as ischemia (interruption of blood supply such as occurs during stroke) or demyelination (loss of the insulating layer around nerve fibres, such as happens in multiple sclerosis) or in a genetic form of motor neuron disease (in which spinal motor neurons die, leading to paralysis. We will do this by genetically manipulating mice to mark one stem cell subtype or the other with a fluorescent label, so that we can follow their behaviour separately in the intact brain. The fluorescent label also allows us to purify and study them separately in a culture dish.
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