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Mapping circuit dynamics during function and dysfunction

delete2022-03-18
delete9
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OA
AI
S
Srinivas Gorur-Shandilya
E
Elizabeth M. Cronin
A
Anna C. Schneider
S
Sara Ann Haddad
P
Philipp Rosenbaum
D
Dirk Bucher
F
Farzan Nadim
E
Eve Marder *
DOI:10.7554/eLife.76579delete
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Abstract

Abstract

En 中文
Neural circuits can generate many spike patterns, but only some are functional. The study of how circuits generate and maintain functional dynamics is hindered by a poverty of description of circuit dynamics across functional and dysfunctional states. For example, although the regular oscillation of a central pattern generator is well characterized by its frequency and the phase relationships between its neurons, these metrics are ineffective descriptors of the irregular and aperiodic dynamics that circuits can generate under perturbation or in disease states. By recording the circuit dynamics of the well-studied pyloric circuit in Cancer borealis, we used statistical features of spike times from neurons in the circuit to visualize the spike patterns generated by this circuit under a variety of conditions. This approach captures both the variability of functional rhythms and the diversity of atypical dynamics in a single map. Clusters in the map identify qualitatively different spike patterns hinting at different dynamic states in the circuit. State probability and the statistics of the transitions between states varied with environmental perturbations, removal of descending neuromodulatory inputs, and the addition of exogenous neuromodulators. This analysis reveals strong mechanistically interpretable links between complex changes in the collective behavior of a neural circuit and specific experimental manipulations, and can constrain hypotheses of how circuits generate functional dynamics despite variability in circuit architecture and environmental perturbations.
Keywords:
CENTRAL PATTERN GENERATOR
LOBSTER STOMATOGASTRIC GANGLION
IDENTIFIED NEURONS
PYLORIC RHYTHM
T-SNE
DIMENSIONALITY REDUCTION
SELECTIVE INACTIVATION
MULTIPLE MECHANISMS
DECAPOD CRUSTACEANS
CHANNEL EXPRESSION

Journal

eLife cover
eLife
IF:
0
Papers:
1.8W
Citations:
16

Organization

N
New Jersey Institute of Technology
Scholars:
4.1K
Papers: 4.5K
Citations: 4.6K
B
Brandeis University
Scholars:
4.0K
Papers: 3.8K
Citations: 5.3K