쉐도잉 연습: How Your Brain Works & Changes | Huberman Lab Essentials - 영상으로 영어 말하기 배우기

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Welcome to Huberman Lab Essentials, where we revisit past episodes for the most potent and actionable science-based tools for mental health, physical health, and performance.
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I'm Andrew Huberman, and I'm a professor of neurobiology and ophthalmology at Stanford School of Medicine.
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For today's podcast, we're going to talk about the parts list of the nervous system.
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Now, that might sound boring, but these are the bits and pieces that together make up everything about your experience of life,
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from what you think about to what you feel, what you imagine and what you accomplish from the day you're born until the day you die.
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By the end of this podcast, I promise you're going to understand a lot more about how you work and how to apply that knowledge.
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So let's talk about the nervous system.
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The reason I say your nervous system and not your brain is
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because your brain is actually just one piece of this larger, more important thing, frankly, that we call the nervous system.
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The nervous system includes your brain and your spinal cord, but also all the connections between your brain and your spinal cord and the organs of your body.
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It also includes, very importantly, all the connections between your organs back to your spinal cord and brain.
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So the way to think about how you function at every level from the moment you're born until the day you die,
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everything you think and remember and feel and imagine
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is that your nervous system is this continuous loop of communication between the brain, spinal cord, and body, and body, spinal cord, and brain.
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In fact, we really can't even separate them.
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It's one continuous loop.
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The way to think about how the nervous system works is that our experiences,
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our memories, everything, is sort of like the keys on a piano being played in a particular order, right?
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If I play the keys on a piano in a particular order and with a particular intensity, that's a given song.
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We can make that analogous to a given experience.
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Our brain is really a map of our experience.
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We come into the world and our brain has a kind of bias towards learning particular kinds of things.
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It's ready to receive information and learn that information, but the brain is really a map of experience.
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So let's talk about what experience really is.
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What does it mean for your brain to work?
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Well, I think it's fair to say that the nervous system really does five things, maybe six.
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The first one is sensation.
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Sensation is a non-negotiable element of your nervous system.
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You have neurons in your eye that perceive certain colors of light and certain directions of movement.
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You have neurons in your skin that perceive particular kinds of touch, like light touch or firm touch or painful touch.
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You have neurons in your ears that perceive certain sounds.
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Your entire experience of life is filtered by these, what we call sensory receptors, if you want to know what the name is.
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Perception is our ability to take what we're sensing and focus on it and make sense of it, to explore it, to remember it.
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So really perceptions are just whichever sensations we happen to be paying attention to at any moment.
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Perception is under the control of your attention.
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And the way to think about attention is it's like a spotlight, except it's not one spotlight.
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You actually have two attentional spotlights.
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Anyone that tells you you can't multitask, Tell them they're wrong.
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And if they disagree with you, tell them to contact me.
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Because in old world primates, of which humans are, we are able to do what's called covert attention.
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We can place a spotlight of attention on something.
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For instance, something we're reading or looking at or someone that we're listening to.
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And we can place a second spotlight of attention on something we're eating
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and how it tastes or our child running around in the room or my dog.
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You can split your attention into two locations, but of course you can also bring your attention, that is your perception to one particular location.
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You can dilate your attention, kind of like making a spotlight more diffuse, or you can make it more concentrated.
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This is very important to understand if you're going to think about tools to improve your nervous system.
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Attention is something that is absolutely under your control.
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The nervous system can be reflexive in its action, or it can be deliberate.
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Deliberate thoughts are top down.
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They require some effort and some focus, but that's the point.
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You can decide to focus your behavior in any way you want, but it will always feel like it requires some effort and some strain.
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Whereas when you're in reflexive mode, just walking and talking and eating and doing your thing, it's going to feel very easy.
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And that's because your nervous system basically wired up to be able to do most things easily without much metabolic demand, without consuming much energy.
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But the moment you try and do something very specific, you're going to feel a sort of mental friction.
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It's going to be challenging.
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So we've got sensations, perceptions, and then we've got things that we call feelings slash emotions.
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And these get a little complicated because almost all of us, I would hope all of us, are familiar with things like happiness and sadness or boredom or frustration.
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Certainly emotions and feelings are the product of the nervous system.
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They involve the activity of neurons.
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But as I mentioned earlier, neurons are electrically active, but they also release chemicals.
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And there's a certain category of chemicals that has a very profound influence on our emotional states.
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They're called neuromodulators.
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And those neuromodulators have names that probably you've heard of before, things like dopamine and serotonin and acetylcholine, epinephrine.
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Neuromodulators are really interesting because they bias which neurons are likely to be active and which ones are likely to be inactive.
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A simple way to think about neuromodulators is they are sort of like playlists
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that you would have on any kind of device where you're going to play particular categories of music.
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So for instance, dopamine, which is often discussed as the molecule of reward or joy, is involved in reward.
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And it does tend to create a sort of upbeat mood when released in appropriate amounts in the brain.
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But the reason it does that is because it makes certain neurons and neural circuits, as we call them, more active and others less active, okay?
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So serotonin, for instance, is a molecule that when released tends to make us feel really good with what we have,
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our sort of internal landscape and the resources that we have.
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Whereas dopamine, more than being a molecule of reward, is really more a molecule of motivation toward things that are outside us and that we want to pursue.
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And we can look at healthy conditions
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or situations like being in pursuit of a goal where every time we accomplish something in route to that goal, a little bit of dopamine is released and we feel more motivation, that happens.
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We can also look at the extreme example of something like mania, where somebody is so, you know,
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relentlessly in pursuit of external things like money and relationships
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that they're sort of in this delusional state of thinking
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that they have the resources that they need in order to pursue all these things when in fact they don't.
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I want to emphasize also that emotions are something that we generally feel are not under our control.
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We feel like they kind of geyser up within us and they just kind of happen to us.
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And that's because they are somewhat reflexive.
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We don't really set out with a deliberate thought to be happy or deliberate thought to be sad.
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We tend to experience them in kind of a passive reflexive way.
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And that brings us to the next thing, which are thoughts.
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Thoughts are really interesting because in many ways they're like perceptions, except that they draw on not just what's happening in the present,
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but also things we remember from the past and things that we anticipate about the future.
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The other thing about thoughts that's really interesting is that thoughts can be both reflexive, they can just be occurring all the time,
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sort of like pop-up windows on a poorly filtered web browser, or they can be deliberate.
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We can decide to have a thought.
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And a lot of people don't understand or at least appreciate
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that the thought patterns and the neural circuits that underlie thoughts can actually be controlled in this deliberate way.
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And then finally, there are actions.
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Actions or behaviors are perhaps the most important aspect to our nervous system,
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because first of all, our behaviors are actually the only thing that are going to create any fossil record of our existence.
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After we die, the nervous system deteriorates, our skeleton will remain, but it's,
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you know, in the moment of experiencing something very joyful or something very sad,
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it can feel so all encompassing that we actually think that it has some meaning beyond that moment,
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but actually for humans, and I think for all species,
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the sensations, the perceptions and the thoughts and the feelings that we have in our lifespan,
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none of that is actually carried forward, except the ones that we take and we convert into actions such as writing,
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actions such as words, actions such as engineering new things.
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And so the fossil record of our species and of each one of us is really through action.
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And that in part is why so much of our nervous system is devoted to converting sensation,
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perceptions, feelings, and thoughts into actions.
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The other way to think about it is that one of the reasons that our central nervous system, our brain and spinal cord, include this stuff in our skull,
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but also connects so heavily to the body is because most everything that we experience, including our thoughts and feelings,
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was really designed to either impact our behavior or not.
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And the fact that thoughts allow us to reach into the past and anticipate the future, and not just experience what's happening in the moment,
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gave rise to an incredible capacity for us to engage in behaviors that are not just for the moment,
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they're based on things that we know from the past and that we would like to see in the future.
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And this aspect to our nervous system of creating movement occurs through some very simple pathways.
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The reflexive pathway basically includes areas of the brainstem we call central pattern generators.
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When you walk, provided you already know how to walk, you are basically walking because you have these central pattern generators,
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groups of neurons that generate right foot, left foot, right foot, left foot kind of movement.
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However, when you decide to move in a particular deliberate way that requires a little more attention,
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you start to engage areas of your brain for top-down processing
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where your forebrain works from the top down to control those central pattern generators so that maybe it's right foot, right foot, left foot, right foot,
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right foot, left foot, if maybe you're hiking along some rocks
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or something and you have to engage in that kind of movement.
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So movement is just like thoughts can be either reflexive or deliberate.
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And when we talk about deliberate, I want to be very specific about how your brain works in the deliberate way,
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because it gives rise to a very important feature of the nervous system that we're going to talk about next, which is your ability to change your nervous system.
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And what I'd like to center on for a second is
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this notion of what does it mean for the nervous system to do something deliberately?
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Well, when you do something deliberately, you pay attention, you are bringing your perception to an analysis of three things.
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Duration, how long something is going to take or should be done.
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Path, what you should be doing.
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And outcome, if you do something for a given length of time, what's going to happen?
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Now, when you're walking down the street or you're eating or you're just talking reflexively, You're not doing this, what I call DPO,
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duration path outcome type of deliberate function in your brain and nervous system.
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Let's give an example where perhaps somebody says something that's triggering to you, you don't like it, and you know you shouldn't respond.
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You feel like, oh, I shouldn't respond, I shouldn't respond, I shouldn't respond.
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You're actively suppressing your behavior through top-down processing.
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Your forebrain is actually preventing you from saying the thing that you know you shouldn't say, or that maybe you should wait to say, or say in a different form.
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This feels like agitation and stress because you're actually suppressing a circuit.
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We actually can see examples of what happens when you're not doing this well.
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Some of the examples come from children.
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If you look at young children, they don't have the forebrain circuitry to engage in this top-down processing until they reach age 22, even 25.
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But in young children, you see this in a really robust way.
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A kid sees a piece of candy that it wants and we'll just reach out and grab it.
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Whereas an adult probably would ask if they could have a piece
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or wait until they were offered a piece in most cases.
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People that have damage to the certain areas of the frontal lobes don't have this kind of restriction.
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They'll just blurt things out.
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They'll just say things.
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Impulsivity is a lack of top-down control, a lack of top-down processing.
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So a lot of the motor system is designed to just work in a reflexive way.
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And then when we decide we want to learn something or do something or not do something, we have to engage in this top-down restriction.
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And it feels like agitation because it's accompanied by the release of a neuromodulator called norepinephrine, which in the body we call adrenaline,
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and it actually makes us feel agitated.
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So for those of you that are trying to learn something new
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or to learn to suppress your responses or be more deliberate and careful in your responses,
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that is going to feel challenging for a particular reason.
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It's going to feel challenging because the chemicals in your body
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that are released in association with that effort are designed to make you feel kind of agitated.
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And so this is really important to understand because if you want to understand neuroplasticity, you want to understand how to shape your behavior, how to shape your thinking,
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how to change how you're able to perform in any context.
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The most important thing to understand is that it requires top-down processing.
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it requires this feeling of agitation.
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In fact, I would say that agitation and strain is the entry point to neuroplasticity.
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So let's take a look at what neuroplasticity is.
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Neuroplasticity is the ability for these connections in the brain and body to change in response to experience.
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And what's so incredible about the human nervous system in particular is that we can direct our own neural changes.
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We can decide that we want to change our brain.
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In other words, our brain can change itself and our nervous system can change itself.
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For a long time, it was thought that neuroplasticity was the unique gift of young animals and humans, that it could only occur when we're young.
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And in fact, the young brain is incredibly plastic.
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Children can learn three languages without an accent reflexively, whereas adults, it's very challenging.
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It takes a lot more effort and strain, a lot more of that duration path outcome kind of thinking in order to achieve those plastic changes.
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We now know, however, that the adult brain can change in response to experience.
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In order to understand that process, we really have to understand something that might at first seem totally divorced from neuroplasticity,
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but actually lies at the center of neuroplasticity.
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And for any of you that are interested in changing your nervous system, so that something that you want can go from being very hard
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or seem almost impossible and out of reach to being very reflexive, This is especially important to pay attention to.
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Plasticity in the adult human nervous system is gated, meaning it is controlled by neuromodulators.
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These things that we talked about earlier, dopamine, serotonin, and one in particular called acetylcholine,
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are what open up plasticity.
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They literally unveil plasticity and allow brief periods of time in which whatever information, whatever thing we're sensing or perceiving or thinking,
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or whatever emotions we feel, can literally be mapped in the brain such
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that later it will become much easier for us to experience and feel that thing.
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Now this has a dark side and a positive side.
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The dark side is, it's actually very easy to get neuroplasticity as an adult through traumatic or terrible or challenging experiences.
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But the important question is to say, why is that?
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And the reason that's the case is because when something very bad happens, there's the release of two sets of neuromodulators in the brain,
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epinephrine, which tends to make us feel alert and agitated, which is associated with most bad circumstances,
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and acetylcholine, which tends to create a even more intense and focused perceptual spotlight.
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Remember earlier we were talking about perception and how it's kind of like a spotlight.
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Acetylcholine makes that light particularly bright and particularly restricted to one region of our experience.
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And it does that by making certain neurons in our brain and body active much more than all the rest.
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So acetylcholine is sort of like a highlighter marker upon which neuroplasticity then comes in later and says,
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wait, which neurons were active in this particularly alerting phase of whatever, you know, day or night, whenever this thing happened to happen.
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So the way it works is this.
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You can think of epinephrine as creating this alertness
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and this kind of unbelievable level of increased attention compared to what you were experiencing before.
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And you can think of acetylcholine as being the molecule that highlights whatever happens during that period of heightened alertness.
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So just to be clear, it's epinephrine creates the alertness.
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That's coming from a subset of neurons in the brainstem, if you're interested.
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And acetylcholine coming from an area of the forebrain is tagging
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or marking the neurons that are particularly active during this heightened level of alertness.
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Now that marks the cells, the neurons, and the synapses for strengthening, for becoming more likely to be active in the future,
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even without us thinking about it, okay?
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So in bad circumstances, this all happens without us having to do much.
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When we want something to happen, however, we want to learn a new language, we want to learn a new skill, we want to become more motivated.
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What do we know for certain?
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We know that that process of getting neuroplasticity so that we have more focus,
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more motivation, absolutely requires the release of epinephrine.
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We have to have alertness in order to have focus.
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And we have to have focus in order to direct those plastic changes to particular parts of our nervous system.
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Now this has immense implications in thinking about the various tools, whether or not those are chemical tools or machine tools,
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or just self-induced regimens of how long or how intensely you're going to focus in order to get neuroplasticity.
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But there's another side to it.
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The dirty secret of neuroplasticity is that no neuroplasticity occurs during the thing you're trying to learn,
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during the terrible event, during the great event, during the thing that you're really trying to shape and learn.
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Nothing is actually changing between the neurons that is going to last.
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All the neuroplasticity, the strengthening of the synapses, the addition in some cases of new nerve cells, or at least connections between nerve cells,
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all of that occurs at a very different phase of life, which is when we are in sleep and non-sleep deep rest.
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And so neuroplasticity, which is the kind of holy grail of human experience of, you know, this is the new year and everyone's thinking new year's resolutions.
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And right now, perhaps everything's organized and people are highly motivated, but what happens in March or April or May?
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Well, that all depends on how much attention and focus one can continually bring to whatever it is they're trying to learn.
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So much so that agitation and a feeling of strain are actually required for this process of neuroplasticity to get triggered.
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But the actual rewiring occurs during periods of sleep and non-sleep deep rest.
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There's a study published last year that's particularly relevant here that I want to share.
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It was not done by my laboratory that showed that 20 minutes of deep rest, this is not deep sleep,
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but essentially doing something very hard and very intense and then taking 20 minutes afterward,
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immediately afterwards, to deliberately turn off the deliberate focused thinking and engagement actually accelerated neuroplasticity.
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There's another study that's just incredible, and we're going to go into this in a future episode of the podcast not too long from now,
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that showed that if people are learning a particular skill, it could be a language skill or a motor skill,
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and they hear a tone just playing in the background, the tone is playing periodically through the background, like just a bell.
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In deep sleep, if that bell is played, learning is much faster for the thing that they were learning while they were awake.
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It somehow cues the nervous system in sleep, doesn't even have to be in dreaming,
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that something that happened in the waking phase was especially important.
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So much so that that bell is sort of a Pavlovian cue.
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It's sort of a reminder to the sleeping brain, oh, you need to remember what it is that you were learning at that particular time of day.
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And the learning rates and the rates of retention, meaning how much people can remember from the thing they learned, are significantly higher under those conditions.
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So I'm going to talk about how to apply all this knowledge in a little bit more in this podcast episode, but also in future episodes.
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But it really speaks to the really key importance of sleep and focus,
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these two opposite ends of our attentional state.
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When we're in sleep, these DPOs, duration, path, and outcome analysis are impossible.
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We just can't do that.
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We are only in relation to what's happening inside of us.
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So sleep is key.
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Also key are periods of non-sleep deep rest where we're turning off our analysis of duration, path, and outcome, in particular for the thing that we were just trying to learn.
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And we're in this kind of liminal state where our attention is kind of drifting all over.
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It turns out that's very important for the consolidation, for the changes between the nerve cells
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that will allow what we were trying to learn to go from being deliberate
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and hard and stressful and a strain to easy and reflexive.
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This also points to how different people, including many modern clinicians, are thinking about how to prevent bad circumstances,
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traumas, from routing their way into our nervous system permanently.
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It says that you might want to interfere with certain aspects of brain states
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that are away from the bad thing that happened, the brain states that happened the next day or the next month or the next year.
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And also I want to make sure that I pay attention to the fact that for many of you,
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you're thinking about neuroplasticity, not just in changing your nervous system to add something new, but to also get rid of things that you don't like, right?
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That you want to forget bad experiences
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or at least remove the emotional contingency of a bad relationship
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or a bad relationship to something or some person or some event.
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Learning to fear certain things less, to eliminate a phobia, to erase a trauma.
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The memories themselves don't get erased.
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I'm sorry to say that the memories don't themselves get erased, but the emotional load of memories can be reduced.
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And there are a number of different ways that that can happen, but they all require this thing that we're calling neuroplasticity.
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We're going to have a large number of discussions about neuroplasticity in depth, but the most important thing to understand is that it is indeed a two-phase process.
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What governs the transition between alert and focused and these deep rest
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and deep sleep states is a system in our brain and body, a certain aspect of the nervous system called the autonomic nervous system.
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And it is immensely important to understand how this autonomic nervous system works.
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It has names like the sympathetic nervous system and parasympathetic nervous system, which frankly are complicated names because they're a little bit misleading.
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Sympathetic is the one that's associated with more alertness.
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Parasympathetic is the one that's associated with more calmness.
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And it gets really misleading because the sympathetic nervous system sounds like sympathy and then people think it's related to calm.
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I'm going to call it the alertness system and the calmness system, because even though sympathetic and parasympathetic are sometimes used, people really get confused.
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So the way to think about the autonomic nervous system and the reason it's important for every aspect of your life,
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but in particular for neuroplasticity and engaging in these focus states
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and then these defocus states is that it works sort of like a seesaw.
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Every 24 hours, we're all familiar with the fact that when we wake up in the morning, we might be a little bit groggy, but then generally we're more alert.
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And then as evening comes around, we tend to become a little more relaxed and sleeping.
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Eventually at some point at night, we go to sleep.
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So we go from alert to deeply calm.
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And as we do that, we go from an ability to engage in these very focused
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duration path outcome types of analysis to states in sleep
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that are completely divorced from duration path and outcome in which everything is completely random and untethered in terms of our sensations, perceptions, and feelings and so forth.
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So every 24 hours, we have a phase of our day
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that is optimal for thinking and focusing and learning and neuroplasticity and doing all sorts of things.
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We have energy as well.
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And at another phase of our day, we're tired and we have no ability to focus.
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We have no ability to engage in duration path outcome types of analyses.
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And it's interesting that both phases are important for shaping our nervous system in the ways that we want.
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So if we want to engage neuroplasticity and we want to get the most out of our nervous system,
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we each have to master that both the transition between wakefulness and sleep and the transition between sleep and wakefulness.
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Now, so much has been made of the importance of sleep and it is critically important for wound healing, for learning, as I just mentioned,
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for consolidating learning, for all aspects of our immune system.
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It is the one period of time in which we're not doing these duration path and outcomes types of analyses.
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And it is critically important to all aspects of our health, including our longevity.
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Much less has been made, however, of how to get better at sleeping, how to get better at the process that involves falling asleep,
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staying asleep, and accessing these states of mind and body that involve total paralysis.
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Most people don't know this, but you're actually paralyzed during much of your sleep so that you can't act out your dreams, presumably.
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But also where your brain is in a total idle state where it's not controlling anything, it's just left to kind of free run.
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and there are certain things that we can all do in order to master that transition
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in order to get better at sleeping
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and it involves much more than just how much we sleep we're all being told of course
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that we need to sleep more
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but there's also the issue of sleep quality accessing those deep
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states of non-dpo thinking accessing the right timing of sleep not
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a lot has been discussed publicly as far as i'm aware of
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when to time your sleep i think we all can appreciate
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that sleeping for half an hour throughout the day so
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that you get a total of eight hours of sleep every 24-hour cycle is probably very different
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and not optimal compared to a solid block of eight hours of sleep.
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Although there are people that have tried this.
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I think it's been written about in various books.
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Not many people can stick to that schedule.
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Incidentally, I think it's called the Uberman schedule, not to be confused with the Huberman schedule, because first of all, my schedule doesn't look anything like that.
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And second of all, I would never attempt such a sleeping regime.
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The other thing that is really important to understand is that we have not explored as a culture,
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the rhythms that occur in our waking states.
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So much has been focused on the value of sleep and the importance of sleep, which is great, but I don't think that most people are paying attention to what's happening in their waking states.
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And when their brain is optimized for focus, when their brain is optimized for these DPOs,
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these duration path outcome types of engagements for learning and for changing.
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And when their brain is probably better suited for more reflexive thinking and behaviors.
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And it turns out that there's a vast amount of scientific data
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which points to the existence of what are called ultradian rhythms.
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You may have heard of circadian rhythms.
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Circadian means circa, about a day.
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So it's 24 hour rhythms because the earth spins once every 24 hours.
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Ultradian rhythms occur throughout the day and they require less time, they're shorter.
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The most important ultradian rhythm for sake of this discussion is the 90 minute rhythm
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that we're going through all the time in our ability to attend and focus.
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And in sleep, our sleep is broken up into 90 minute segments.
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Early in the night, we have more phase one and phase two lighter sleep.
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And then we go into our deeper phase three and phase four sleep.
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And then we return to phase one, two, three, four.
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So all night you're going through these ultradian rhythms of stage one, two, three, four, one, two, three, four, it's repeating.
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Most people perhaps know that, maybe they don't, but when you wake up in the morning, these ultradian rhythms continue.
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And it turns out that we are optimized for focus
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and attention within these 90 minute cycles so that at the beginning of one of these 90 minute cycles,
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maybe you sit down to learn something new or to engage in some new challenging behavior.
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For the first five or 10 minutes of one of those cycles, It's well known that the brain and the neural circuits
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and the neuromodulators are not going to be optimally tuned to whatever it is you're trying to do.
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But as you drop deeper into that 90 minute cycle,
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your ability to focus and to engage in this DPO process and to direct neuroplasticity and to learn is actually much greater.
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And then you eventually pop out of that at the end of the 90 minute cycle.
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So these cycles are occurring in sleep and these cycles are occurring in wakefulness.
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And all of those are governed by this seesaw of alertness to calmness that we call the autonomic nervous system.
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So if you want to master and control your nervous system, regardless of what tool you reach to, whether or not it's a pharmacologic tool or whether
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or not it's a behavioral tool or whether or not it's a brain machine interface tool,
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it's vitally important to understand that your entire existence is occurring in these 90 minute cycles, whether or not you're asleep or awake.
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And so you really need to learn how to wedge into those 90 minute cycles And for instance, it would be completely crazy and counterproductive to try
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and just learn information while in deep sleep by listening to that information because you're not able to access it.
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It would be perfectly good, however, to engage in a focus bout of learning each day.
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And now we know how long that focus bout of learning should be.
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It should be at least one 90-minute cycle.
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And the expectation should be that the early phase of that cycle is going to be challenging.
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It's going to hurt.
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It's not going to feel natural.
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It's not going to feel like flow.
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but that you can learn and the circuits of your brain
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that are involved in focus and motivation can learn to drop in to a mode of more focus, get more neuroplasticity, in other words,
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by engaging these ultradian cycles at the appropriate times of day.
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For instance, some people are very good learners early in the day and not so good in the afternoon.
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So you can start to explore this process even without any information about the underlying neurochemicals by simply paying attention,
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not just to when you go to sleep and when you wake up each morning, how deep or how shallow your sleep felt to you subjectively,
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but also throughout the day when your brain tends to be most anxious,
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because it turns out that has a correlate related to perception that we will talk about.
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You can ask yourself, when are you most focused?
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When are you least anxious?
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When do you feel most motivated?
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When do you feel most least motivated?
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By By understanding how the different aspects of your perception,
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sensation, feeling, thought, and actions tend to want to be engaged or not want to be engaged,
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you develop a very good window into what's going to be required to shift your ability to focus
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or shift your ability to engage in creative type thinking at different times of day, should you choose.
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And so that's where we're heading going forward.
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It all starts with mastering this seesaw that is the autonomic nervous system
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that at a The course level is a transition between wakefulness and sleep, but at a finer level and just as important are the various cycles,
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these ultradian 90-minute cycles that govern our life all the time, 24 hours a day, every day of our life.
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And so we're going to talk about how you can take control of the autonomic nervous system
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so that you can better access neuroplasticity, better access sleep, even take advantage of the phase
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that is the transition between sleep and waking to access things like creativity
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and so forth all based on studies that have been published over the last hundred years, mainly within the last 10 years, and some that are very,
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very new, and that point to the use of specific tools
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that will allow you to get the most out of your nervous system.
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So today we covered a lot of information.
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It was sort of a whirlwind tour of everything from neurons and synapses to neuroplasticity in the autonomic nervous system.
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We will revisit a lot of these themes going forward.
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So if all of
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that didn't sink in in one pass, please don't worry we will come back to these themes over and over again.
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I wanted to equip you with a language that we're all developing a kind of common base set of information going forward.
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And I hope the information is valuable to you
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and you're thinking about what is working well for you and is what's working less well and what's been exceedingly challenging,
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what's been easy for you in terms of your pursuit of particular behaviors or emotional states, where your challenges or the challenges of people that you know might reside.
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So thank you so much for your time and attention and above all, thank you for your interest in science.

이 클립으로 달성할 말하기 목표

이 비디오는 영어 회화 연습에서 중요한 논리적 설명 능력복합 개념 전달력을 키우는 데 도움을 줍니다. 특히 IELTS 스피킹과 같은 고급 시험에서 요구되는 "과학적 내용을 쉽게 풀어 설명하는 기술"을 연습할 수 있습니다. 일상 대화뿐만 아니라 전문적인 주제도 자연스럽게 다룰 수 있는 유창성을 키우는 것이 목표입니다.

재사용 가능한 표현 모음

  • "potent and actionable science-based tools" – 강력하고 실행 가능한 과학 기반 도구
  • "continuous loop of communication" – 지속적인 의사소통 루프
  • "sensory receptors" – 감각 수용기
  • "covert attention" – 잠재 주의력
  • "mental friction" – 정신적 마찰

이 표현들은 shadowspeak 연습에 적합하며, 특히 복잡한 개념을 명확히 전달할 때 유용합니다. shadowing site에서 이 문장들을 반복해서 연습하면 자연스러운 발음과 리듬을 익힐 수 있습니다.

개선해야 할 약점: 발음과 리듬

이 비디오의 대화는 "neurobiology", "ophthalmology"와 같은 전문 용어가 포함되어 있어 발음 정확도가 중요합니다. 특히 "perception"과 "sensation"의 차이를 구분하면서 발음하는 것이 관건입니다. 또한, 긴 문장에서의 리듬 조절도 연습해야 하는데, "The way to think about how the nervous system works is that our experiences..."와 같은 구조는 쉽게 말속도가 붕 뜨는 경향이 있습니다. shadowspeaks 방식으로 반복 연습하면, 자연스러운 휴지와 강세를 익혀 긴 문장도 부드럽게 말할 수 있습니다.

쉐도잉이란? 영어 실력을 빠르게 키우는 과학적 방법

쉐도잉(Shadowing)은 원래 전문 통역사 훈련을 위해 개발된 언어 학습 기법으로, 다언어 학자인 Dr. Alexander Arguelles에 의해 대중화된 방법입니다. 핵심 원리는 간단하지만 매우 강력합니다: 원어민의 영어를 들으면서 1~2초의 짧은 지연으로 즉시 소리 내어 따라 말하는 것——마치 '그림자(shadow)'처럼 화자를 따라가는 것입니다. 문법 공부나 수동적인 청취와 달리, 쉐도잉은 뇌와 입 근육이 동시에 실시간으로 영어를 처리하고 재현하도록 훈련합니다. 연구에 따르면 이 방법은 발음 정확도, 억양, 리듬, 연음, 청취력, 말하기 유창성을 크게 향상시킵니다. IELTS 스피킹 준비와 자연스러운 영어 소통을 원하는 분들에게 특히 효과적입니다.