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INFORMATION FOR

    Consciousness, Seizures, & Cortical Networks - The Blumenfeld Lab at Yale School of Medicine

    August 31, 2026

    Transcript

    • 00:06Consciousness is what's important to
    • 00:08us. It's all the things
    • 00:09that we're aware of. It's
    • 00:11it's what, keeps us awake.
    • 00:13It's what makes us experience
    • 00:15our lives moment to moment.
    • 00:17It's what makes us able
    • 00:19to function in the world.
    • 00:20It's really what makes us
    • 00:21human.
    • 00:23When people have seizures, they
    • 00:24often lose consciousness.
    • 00:26They are unpredictable. They can
    • 00:27happen any time day or
    • 00:28night and have devastating consequences
    • 00:31for people's quality of life.
    • 00:37Our lab is interested in
    • 00:38understanding
    • 00:39normal consciousness,
    • 00:41understanding how that is disrupted
    • 00:42in disorders like epilepsy,
    • 00:44and finally, how to try
    • 00:46to improve or restore consciousness
    • 00:48using therapeutic
    • 00:49methods like brain stimulation.
    • 00:51Consciousness depends on huge huge
    • 00:53networks in the brain, including
    • 00:54both the surface of the
    • 00:55brain or the cortex and
    • 00:56also deep structures in the
    • 00:58brain like the thalamus and
    • 00:59brain stem. The deep structures
    • 01:00in the brain are critical
    • 01:02for consciousness because they provide
    • 01:05modulatory and arousal functions.
    • 01:07And that's a key aspect
    • 01:08of consciousness is being awake
    • 01:10and being alert. And that's
    • 01:11modulated and regulated
    • 01:14on long timescales, for example,
    • 01:15when you're asleep or when
    • 01:16you're awake or when you're
    • 01:17in a coma, when you're
    • 01:19in a normal state of
    • 01:19consciousness, or anesthesia or seizures.
    • 01:22And also on shorter timescales,
    • 01:23moment to moment,
    • 01:25that affects what we're conscious
    • 01:26of and what we're not
    • 01:27conscious of. And that's controlled
    • 01:30to a large extent by
    • 01:31cortical circuits interacting with these
    • 01:33deep structures in the brain,
    • 01:34including the thalamus of the
    • 01:35brain stem are multiple parallel
    • 01:37systems that play this key
    • 01:39role in controlling and regulating
    • 01:40our consciousness.
    • 01:47We use brain imaging as
    • 01:49a key method to look
    • 01:50at big scale circuits in
    • 01:52the brain.
    • 01:53We also use electrical recordings,
    • 01:55which gives us much better
    • 01:56resolution in time and more
    • 01:58direct measurements of the activity
    • 02:00of brain cells and brain
    • 02:02circuits.
    • 02:03We also measure in animal
    • 02:05models neurotransmitters
    • 02:06and neurons and look at
    • 02:08at things on a very
    • 02:09fundamental level.
    • 02:10And in people, we look
    • 02:12at other metrics of consciousness
    • 02:14and of function and of
    • 02:16brain activity, including
    • 02:17eye movements, subtle dilation of
    • 02:19the pupil, and blinks and
    • 02:20tiny movements of the eyes
    • 02:22called saccades. It can give
    • 02:23us clues about what's happening
    • 02:24during normal consciousness and impaired
    • 02:26consciousness.
    • 02:27And then we use machine
    • 02:28learning and artificial intelligence to
    • 02:30decode
    • 02:31all these signals and understand
    • 02:33what's going on in the
    • 02:34brain and also what's going
    • 02:35on with these surrogate markers
    • 02:36like the the eye movements
    • 02:37to be able to do
    • 02:38things like knowing if someone's
    • 02:40conscious or not of a
    • 02:41particular stimulus without even asking
    • 02:42them just based on their
    • 02:43eye movements.
    • 02:49We've just completed a clinical
    • 02:51trial where people with a
    • 02:53particular type of seizures, temporal
    • 02:54lobe seizures.
    • 02:55We implanted devices in patients
    • 02:58where during those seizures, we
    • 02:59first tried to stop the
    • 03:00seizures with brain stimulation, like
    • 03:02the way a defibrillator
    • 03:04or a pacemaker works.
    • 03:06If that didn't work, we
    • 03:07had a second mode of
    • 03:08stimulation, which was triggered by
    • 03:10seizures that weren't successfully stopped
    • 03:12and stimulated the thalamus to
    • 03:13try to wake people up
    • 03:14and make them more conscious
    • 03:16during seizures. And we measured
    • 03:18their behavior using smart, watch
    • 03:20technology at home and monitored
    • 03:22how well they were able
    • 03:23to respond and interact during
    • 03:25the seizures with or without
    • 03:26this additional stimulation of the
    • 03:28deep structures of the brain.
    • 03:31Remarkably, we found that this
    • 03:32treatment really helped the patients,
    • 03:34really helped them improve their
    • 03:35behavior,
    • 03:36their responsiveness, and their ability
    • 03:38to interact with the world
    • 03:39during and after the seizures.
    • 03:41So that's the kind of
    • 03:41treatment
    • 03:42approach that we're exploring further,
    • 03:45where we can hopefully understand
    • 03:46the brain circuits that are
    • 03:47involved in normal and impaired
    • 03:49consciousness and intervene to try
    • 03:50to help patients with epilepsy
    • 03:52and with other types of
    • 03:53disorders.