4.8 Article

Molecularly defined and functionally distinct cholinergic subnetworks

Journal

NEURON
Volume 110, Issue 22, Pages 3774-+

Publisher

CELL PRESS
DOI: 10.1016/j.neuron.2022.08.025

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Funding

  1. National Natural Science Foundation of China [31721002, 81920208014, 31930051, 82030032, 81901113]
  2. National Program for Support of Top-Notch Young Professionals

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Cholinergic neurons in different species can be categorized into two subpopulations, each with unique functional and structural characteristics, that contribute to diverse behavioral functions.
Cholinergic neurons in the medial septum (MS) constitute a major source of cholinergic input to the forebrain and modulate diverse functions, including sensory processing, memory, and attention. Most studies to date have treated cholinergic neurons as a single population; as such, the organizational principles underling their functional diversity remain unknown. Here, we identified two subsets (D28K(+) versus D28K(-)) of cholinergic neurons that are topographically segregated in mice, Macaca fascicularis, and humans. These cholinergic subpopulations possess unique electrophysiological signatures, express mutually exclusive marker genes (kcnh1 and aifm3 versus cacna1h and gga3), and make differential connections with physiologically distinct neuronal classes in the hippocampus to form two structurally defined and functionally distinct circuits. Gain- and loss-of-function studies on these circuits revealed their differential roles in modulation of anxiety-like behavior and spatial memory. These results provide a molecular and circuitry-based theory for how cholinergic neurons contribute to their diverse behavioral functions.

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