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Surprisingly complex waves reveal the brain's inner workings

253 points · 98 comments · ibobev

  1. randomImmigrant · · focus · HN ↗
    For context, the debate in the field has been whether these are epiphenomena of the actual neuronal activity, or a meaningful driver of further activity.

    I don’t think these studies quite rest the case. As Buzsaki comments in the article, the action is in the cells to create these waves. Do the waves themselves get measured and impact what happens next? The issue at hand is: synaptic currents are stronger and we know neurons respond to them. The wave behavior is in the extracellular fluid as well, and that part we have evidence neurons don’t respond much to.

    That said, thing the article doesn’t talk about is astrocytes. Especially in the cortex, most synapses are tripartite. There’s an astrocytic end foot that sheathes the synapse and regulates how much of the bulk extracellular space has access to the synapse. And one astrocyte can touch thousands of synapses and in humans, hundreds of thousands. They also form a syncitium, through gap junctions/electrical synapses.

    Do astrocytes respond to the extracellular wave behavior, which potentially changes the extent and behavior of the syncitium, and thus impact the neurons they touch?

    That’s still an open question but that’s what I’d be interested to find out more about.

    1. monideas · · focus · HN ↗
      Reminds me of when non-coding DNA was thought to be useless, it was labeled “Junk DNA”, and then it was realized it played a role in regulating gene expression.
      1. bcjdjsndon · · focus · HN ↗
        Does make me worry about the competence of scientists that they make that mistake.
        1. HarHarVeryFunny · · focus · HN ↗
          Calling it a "mistake" vs just a lack of knowledge is a weird way of framing it. There was much discussion of "junk DNA" (now referred to as non-coding DNA) for years/decades - everyone realized it was an anomaly to be explained, but no-one knew the explanation. This comprises the vast majority (98%) of DNA - so clearly it was there for some reason.
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