Structure and function of axo-axonic inhibition

Author:

Schneider-Mizell Casey M1ORCID,Bodor Agnes L1,Collman Forrest1ORCID,Brittain Derrick1,Bleckert Adam1,Dorkenwald Sven23,Turner Nicholas L23,Macrina Thomas23,Lee Kisuk24,Lu Ran2,Wu Jingpeng2,Zhuang Jun1,Nandi Anirban1,Hu Brian1ORCID,Buchanan JoAnn1,Takeno Marc M1ORCID,Torres Russel1,Mahalingam Gayathri1,Bumbarger Daniel J1,Li Yang1,Chartrand Thomas1ORCID,Kemnitz Nico2,Silversmith William M2,Ih Dodam2,Zung Jonathan2,Zlateski Aleksandar2,Tartavull Ignacio2,Popovych Sergiy23,Wong William2,Castro Manuel2,Jordan Chris S2,Froudarakis Emmanouil56ORCID,Becker Lynne1,Suckow Shelby1,Reimer Jacob56,Tolias Andreas S567ORCID,Anastassiou Costas A18,Seung H Sebastian23,Reid R Clay1ORCID,Costa Nuno Maçarico da1ORCID

Affiliation:

1. Allen Institute for Brain Sciences

2. Princeton Neuroscience Institute, Princeton University

3. Computer Science Department, Princeton University

4. Brain & Cognitive Sciences Department, Massachusetts Institute of Technology

5. Department of Neuroscience, Baylor College of Medicine

6. Center for Neuroscience and Artificial Intelligence, Baylor College of Medicine

7. Department of Electrical and Computer Engineering, Rice University

8. Department of Neurology, University of British Columbia

Abstract

Inhibitory neurons in mammalian cortex exhibit diverse physiological, morphological, molecular, and connectivity signatures. While considerable work has measured the average connectivity of several interneuron classes, there remains a fundamental lack of understanding of the connectivity distribution of distinct inhibitory cell types with synaptic resolution, how it relates to properties of target cells, and how it affects function. Here, we used large-scale electron microscopy and functional imaging to address these questions for chandelier cells in layer 2/3 of the mouse visual cortex. With dense reconstructions from electron microscopy, we mapped the complete chandelier input onto 153 pyramidal neurons. We found that synapse number is highly variable across the population and is correlated with several structural features of the target neuron. This variability in the number of axo-axonic ChC synapses is higher than the variability seen in perisomatic inhibition. Biophysical simulations show that the observed pattern of axo-axonic inhibition is particularly effective in controlling excitatory output when excitation and inhibition are co-active. Finally, we measured chandelier cell activity in awake animals using a cell-type-specific calcium imaging approach and saw highly correlated activity across chandelier cells. In the same experiments, in vivo chandelier population activity correlated with pupil dilation, a proxy for arousal. Together, these results suggest that chandelier cells provide a circuit-wide signal whose strength is adjusted relative to the properties of target neurons.

Funder

Intelligence Advanced Research Projects Activity

National Institute of Neurological Disorders and Stroke

Army Research Office

National Eye Institute

National Institute of Mental Health

National Institute of Neurological Disorders and Strokescience

Mathers Foundation

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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