Literature DB >> 25505314

Voltage imaging of waking mouse cortex reveals emergence of critical neuronal dynamics.

Gregory Scott1, Erik D Fagerholm1, Hiroki Mutoh2, Robert Leech1, David J Sharp1, Woodrow L Shew3, Thomas Knöpfel4.   

Abstract

Complex cognitive processes require neuronal activity to be coordinated across multiple scales, ranging from local microcircuits to cortex-wide networks. However, multiscale cortical dynamics are not well understood because few experimental approaches have provided sufficient support for hypotheses involving multiscale interactions. To address these limitations, we used, in experiments involving mice, genetically encoded voltage indicator imaging, which measures cortex-wide electrical activity at high spatiotemporal resolution. Here we show that, as mice recovered from anesthesia, scale-invariant spatiotemporal patterns of neuronal activity gradually emerge. We show for the first time that this scale-invariant activity spans four orders of magnitude in awake mice. In contrast, we found that the cortical dynamics of anesthetized mice were not scale invariant. Our results bridge empirical evidence from disparate scales and support theoretical predictions that the awake cortex operates in a dynamical regime known as criticality. The criticality hypothesis predicts that small-scale cortical dynamics are governed by the same principles as those governing larger-scale dynamics. Importantly, these scale-invariant principles also optimize certain aspects of information processing. Our results suggest that during the emergence from anesthesia, criticality arises as information processing demands increase. We expect that, as measurement tools advance toward larger scales and greater resolution, the multiscale framework offered by criticality will continue to provide quantitative predictions and insight on how neurons, microcircuits, and large-scale networks are dynamically coordinated in the brain.
Copyright © 2014 Scott et al.

Entities:  

Keywords:  anesthesia; circuit dynamics; genetically encoded; mouse; optical imaging; voltage imaging

Mesh:

Year:  2014        PMID: 25505314      PMCID: PMC4261090          DOI: 10.1523/JNEUROSCI.3474-14.2014

Source DB:  PubMed          Journal:  J Neurosci        ISSN: 0270-6474            Impact factor:   6.167


  36 in total

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  60 in total

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Review 4.  Voltage imaging to understand connections and functions of neuronal circuits.

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Review 5.  Genetically Encoded Voltage Indicators: Opportunities and Challenges.

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6.  The avalanche-like behaviour of large-scale haemodynamic activity from wakefulness to deep sleep.

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10.  Repertoire of mesoscopic cortical activity is not reduced during anesthesia.

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