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A Cyfip2-Dependent Excitatory Interneuron Pathway Establishes the Innate Startle Threshold.


ABSTRACT: Sensory experiences dynamically modify whether animals respond to a given stimulus, but it is unclear how innate behavioral thresholds are established. Here, we identify molecular and circuit-level mechanisms underlying the innate threshold of the zebrafish startle response. From a forward genetic screen, we isolated five mutant lines with reduced innate startle thresholds. Using whole-genome sequencing, we identify the causative mutation for one line to be in the fragile X mental retardation protein (FMRP)-interacting protein cyfip2. We show that cyfip2 acts independently of FMRP and that reactivation of cyfip2 restores the baseline threshold after phenotype onset. Finally, we show that cyfip2 regulates the innate startle threshold by reducing neural activity in a small group of excitatory hindbrain interneurons. Thus, we identify a selective set of genes critical to establishing an innate behavioral threshold and uncover a circuit-level role for cyfip2 in this process.

SUBMITTER: Marsden KC 

PROVIDER: S-EPMC6642828 | biostudies-literature | 2018 Apr

REPOSITORIES: biostudies-literature

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A Cyfip2-Dependent Excitatory Interneuron Pathway Establishes the Innate Startle Threshold.

Marsden Kurt C KC   Jain Roshan A RA   Wolman Marc A MA   Echeverry Fabio A FA   Nelson Jessica C JC   Hayer Katharina E KE   Miltenberg Ben B   Pereda Alberto E AE   Granato Michael M  

Cell reports 20180401 3


Sensory experiences dynamically modify whether animals respond to a given stimulus, but it is unclear how innate behavioral thresholds are established. Here, we identify molecular and circuit-level mechanisms underlying the innate threshold of the zebrafish startle response. From a forward genetic screen, we isolated five mutant lines with reduced innate startle thresholds. Using whole-genome sequencing, we identify the causative mutation for one line to be in the fragile X mental retardation pr  ...[more]

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