ERR2 and ERR3 promote the development of gamma motor neuron functional properties required for proprioceptive movement control

2022 | journal article. A publication with affiliation to the University of Göttingen.

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​ERR2 and ERR3 promote the development of gamma motor neuron functional properties required for proprioceptive movement control​
Khan, M. N.; Cherukuri, P.; Negro, F.; Rajput, A.; Fabrowski, P.; Bansal, V. & Lancelin, C. et al.​ (2022) 
PLoS Biology20(12) art. e3001923​.​ DOI: https://doi.org/10.1371/journal.pbio.3001923 

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Authors
Khan, Mudassar N.; Cherukuri, Pitchaiah; Negro, Francesco; Rajput, Ashish; Fabrowski, Piotr; Bansal, Vikas; Lancelin, Camille; Lee, Tsung-I; Bian, Yehan; Mayer, William P.
Abstract
The ability of terrestrial vertebrates to effectively move on land is integrally linked to the diversification of motor neurons into types that generate muscle force (alpha motor neurons) and types that modulate muscle proprioception, a task that in mammals is chiefly mediated by gamma motor neurons. The diversification of motor neurons into alpha and gamma types and their respective contributions to movement control have been firmly established in the past 7 decades, while recent studies identified gene expression signatures linked to both motor neuron types. However, the mechanisms that promote the specification of gamma motor neurons and/or their unique properties remained unaddressed. Here, we found that upon selective loss of the orphan nuclear receptors ERR2 and ERR3 (also known as ERRβ, ERRγ or NR3B2, NR3B3, respectively) in motor neurons in mice, morphologically distinguishable gamma motor neurons are generated but do not acquire characteristic functional properties necessary for regulating muscle proprioception, thus disrupting gait and precision movements. Complementary gain-of-function experiments in chick suggest that ERR2 and ERR3 could operate via transcriptional activation of neural activity modulators to promote a gamma motor neuron biophysical signature of low firing thresholds and high firing rates. Our work identifies a mechanism specifying gamma motor neuron functional properties essential for the regulation of proprioceptive movement control.
Issue Date
2022
Journal
PLoS Biology 
Project
SFB 1286: Quantitative Synaptologie 
SFB 1286 | Z02: Integrative Datenanalyse und -interpretation. Generierung einer synaptisch-integrativen Datenstrategie (SynIDs) 
Working Group
RG Bonn 
External URL
https://sfb1286.uni-goettingen.de/literature/publications/177
eISSN
1545-7885
Language
English
Sponsor
Deutsche Forschungsgemeinschaft http://dx.doi.org/10.13039/501100001659
DFG Cluster of Excellence 171 for Nanoscale Microscopy and Molecular Physiology of the Brain
European Research Council under the European Union's Seventh Framework Programme
BMBF IDSN
ERA-Net E-Rare MAXOMOD
Collaborative Research Centers (CRC) DFG
European Research Council through the Synergy Grant NaturalBionicS
European Union’s Horizon 2020 research and innovation programme under the Marie Skłodowska-Curie

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