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2P-NucTag: on-demand phototagging for molecular analysis of functionally identified cortical neurons

Shi, J.; Nutkovich, B.; Kushinsky, D.; Rao, B. Y.; Herrlinger, S. A.; Mihaila, T. S.; Malina, K. C.-K.; OToole, C. K.; Conde Paredes, M. E.; Yong, H. C.; Varol, E.; Losonczy, A.; Spiegel, I.

2024-03-26 neuroscience
10.1101/2024.03.21.586118 bioRxiv
Show abstract

Neural circuits are characterized by genetically and functionally diverse cell types. A mechanistic understanding of circuit function is predicated on linking the genetic and physiological properties of individual neurons. However, it remains highly challenging to map the molecular properties onto functionally heterogeneous neuronal subtypes in mammalian cortical circuits in vivo. Here, we introduce a high-throughput two-photon nuclear phototagging (2P-NucTag) approach for on-demand and indelible labeling of single neurons via a photoactivatable red fluorescent protein following in vivo functional characterization in behaving mice. Using this novel function-forward pipeline to selectively label and transcriptionally profile previously inaccessible place and silent cells in the hippocampus of behaving mice, we identify unexpected differences in gene expression between these hippocampal pyramidal neurons with distinct spatial coding properties. Thus, 2P-NucTag opens a new way to uncover the molecular principles that govern the functional organization of neural circuits. One-Sentence Summary2P-NucTag - A novel high-throughput on-demand phototagging approach to identify selective gene expression of functionally distinct neurons in vivo in behaving animals.

Published in Neuron (predicted rank #5) · training set

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