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Sensory Neuron Fates Are Distinguished by a Transcriptional Switch that Regulates Dendrite Branch Stabilization.


AUTHORS

Smith CJCody J , O'Brien T Timothy , Chatzigeorgiou M Marios , Spencer WC W Clay , Feingold-Link E Elana , Husson SJ Steven J , Hori S Sayaka , Mitani S Shohei , Gottschalk A Alexander , Schafer WR William R , Miller DM David M . Neuron. 2013 7 24; 79(2). 266-80

ABSTRACT

Sensory neurons adopt distinct morphologies and functional modalities to mediate responses to specific stimuli. Transcription factors and their downstream effectors orchestrate this outcome but are incompletely defined. Here, we show that different classes of mechanosensory neurons in C. elegans are distinguished by the combined action of the transcription factors MEC-3, AHR-1, and ZAG-1. Low levels of MEC-3 specify the elaborate branching pattern of PVD nociceptors, whereas high MEC-3 is correlated with the simple morphology of AVM and PVM touch neurons. AHR-1 specifies AVM touch neuron fate by elevating MEC-3 while simultaneously blocking expression of nociceptive genes such as the MEC-3 target, the claudin-like membrane protein HPO-30, that promotes the complex dendritic branching pattern of PVD. ZAG-1 exercises a parallel role to prevent PVM from adopting the PVD fate. The conserved dendritic branching function of the Drosophila AHR-1 homolog, Spineless, argues for similar pathways in mammals.

Copyright © 2013 Elsevier Inc. All rights reserved.