Neurodegenerative Diseases & Neural Repair - The Strittmatter Lab at Yale School of Medicine
July 29, 2026About the speakers
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- ID
- 14370
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Transcript
- 00:06The brain is a connection of neurons.
- 00:09Each neuron has to talk to one another.
- 00:11They extend over long distances, but at their very tip,
- 00:16they release a chemical onto a second neuron, which then creates a network.
- 00:21If you don't have synapses, the neurons might be there,
- 00:24but they can't talk to one another.
- 00:25You don't have a neural network and you can't carry out any cognitive functions.
- 00:30Unfortunately, what happens in a lot of these different neurodegenerative diseases
- 00:34they start losing synapses
- 00:36and whatever part of the brain is affected,
- 00:39it's normal job is lost.
- 00:42In Alzheimer's, It's quite widespread
- 00:45but of course most affects the memory areas of the brain.
- 00:48Whereas in Parkinson's disease, this may be more in the motor circuits
- 00:53and that's why people have more trouble moving
- 00:56rather than trouble with cognition in most cases.
- 01:05In these different diseases, certain proteins start piling up in excess in big aggregates,
- 01:12clumps in the brain.
- 01:13Each neurodegenerative disease, there's a different protein piling up.
- 01:18Somehow these protein aggregates cause the synapse loss.
- 01:22So what we're interested in is what is the biochemical, cellular, molecular basis
- 01:30for these protein aggregates damaging the synapses.
- 01:33We've worked hard to figure out a way to target those proteins with drugs.
- 01:39The striking thing is, if we can stop this damage,
- 01:42how can we get recovery of function?
- 01:45So we've also had a long standing interest in how to repair
- 01:49connections in the brain.
- 01:59We want to model things that are based on human cells and human disease.
- 02:04So a key thing that we do is culture human neurons
- 02:10from induced pluripotent stem cells.
- 02:12So we have human neurons in a dish
- 02:16and then we can extract the misfolded
- 02:20amyloid beta protein from a human autopsy
- 02:24and add it to those neurons and demonstrate that it causes synapse loss there.
- 02:29And again, these drugs we test in a human cell model.
- 02:33That's entering clinical trials.
- 02:35Our hope is that it stops the disease process,
- 02:38that is the loss of synapses actually restores memory function.
- 02:43In terms of understanding how these drugs work at a detailed level,
- 02:48even at atomic resolution,
- 02:51we use a number of techniques like cryo-electron microscopy
- 02:56which allows us to actually look
- 02:58beyond the limits of light microscopy, to see the actual atomic structure
- 03:03of these receptor proteins and how the drug binds to them.
- 03:08Another key tool that we use
- 03:11is based on what's called transcriptomics,
- 03:16which allows us to look at all the genes that are expressed
- 03:19in all the different cells in the brain.
- 03:22When we expose them to amyloid beta or other aggregated proteins,
- 03:27we could ask, how do all the genes go up or down
- 03:31in different cell types in the brain and understand what the entire
- 03:36sort of genomic response to this pathology is,
- 03:39and the extent to which the drug will reverse
- 03:43some or all of those gene expression changes.
- 03:52We’d like to sort out the different mechanisms
- 03:56for different neurodegenerative diseases and how we can intervene.
- 04:02We touch on a lot of different things from very basic molecular stuff
- 04:06to cellular stuff and then importantly to clinical applications,
- 04:10and I think a real benefit at Yale
- 04:14is the way it's so easy to collaborate here
- 04:17across disciplines, across laboratories,
- 04:21especially from laboratory basic science
- 04:25to clinical scientists and clinical trials.
- 04:28Sort of the collaboration and cross-disciplinary
- 04:33research at Yale is absolutely essential
- 04:36for this type of research, and it's very easy to achieve at Yale.