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Network oscillation rules imposed by species-specific electrical coupling.

Stefanos Stagkourakis | Carolina Thörn Pérez | Arash Hellysaz | Rachida Ammari | Christian Broberger
eLife | 2018

Electrical junctions are widespread within the mammalian CNS. Yet, their role in organizing neuronal ensemble activity remains incompletely understood. Here, in a functionally well-characterized system - neuroendocrine tuberoinfundibular dopamine (TIDA) neurons - we demonstrate a striking species difference in network behavior: rat TIDA cells discharge in highly stereotyped, robust, synchronized slow oscillations, whereas mouse oscillations are faster, flexible and show substantial cell-to-cell variability. We show that these distinct operational modes are explained by the presence of strong TIDA-TIDA gap junction coupling in the rat, and its complete absence in the mouse. Both species, however, encompass a similar heterogeneous range of intrinsic resonance frequencies, suggesting similar network building blocks. We demonstrate that gap junctions select and impose the slow network rhythm. These data identify a role for electrical junctions in determining oscillation frequency and show how related species can rely on distinct network strategies to accomplish adaptive control of hormone release.

Pubmed ID: 29722649

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Associated grants

  • Agency: European Research Council, International
    Id: 261286

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This is a list of tools and resources that we have found mentioned in this publication.


TIDA (tool)

RRID:SCR_014582

A software which is used to acquire physiological data from the HEKA Patch Clamp Amplifiers and HEKA interfaces.

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