Literature DB >> 35060903

Synaptic connectivity to L2/3 of primary visual cortex measured by two-photon optogenetic stimulation.

Travis A Hage1, Alice Bosma-Moody1, Christopher A Baker1, Megan B Kratz1, Luke Campagnola1, Tim Jarsky1, Hongkui Zeng1, Gabe J Murphy1.   

Abstract

Understanding cortical microcircuits requires thorough measurement of physiological properties of synaptic connections formed within and between diverse subclasses of neurons. Towards this goal, we combined spatially precise optogenetic stimulation with multicellular recording to deeply characterize intralaminar and translaminar monosynaptic connections to supragranular (L2/3) neurons in the mouse visual cortex. The reliability and specificity of multiphoton optogenetic stimulation were measured across multiple Cre lines, and measurements of connectivity were verified by comparison to paired recordings and targeted patching of optically identified presynaptic cells. With a focus on translaminar pathways, excitatory and inhibitory synaptic connections from genetically defined presynaptic populations were characterized by their relative abundance, spatial profiles, strength, and short-term dynamics. Consistent with the canonical cortical microcircuit, layer 4 excitatory neurons and interneurons within L2/3 represented the most common sources of input to L2/3 pyramidal cells. More surprisingly, we also observed strong excitatory connections from layer 5 intratelencephalic neurons and potent translaminar inhibition from multiple interneuron subclasses. The hybrid approach revealed convergence to and divergence from excitatory and inhibitory neurons within and across cortical layers. Divergent excitatory connections often spanned hundreds of microns of horizontal space. In contrast, divergent inhibitory connections were more frequently measured from postsynaptic targets near each other.
© 2022, Hage et al.

Entities:  

Keywords:  connectivity; mouse; neuroscience; optogenetics; patch-clamp; synapse

Mesh:

Year:  2022        PMID: 35060903      PMCID: PMC8824465          DOI: 10.7554/eLife.71103

Source DB:  PubMed          Journal:  Elife        ISSN: 2050-084X            Impact factor:   8.713


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