Excitatory motor neurons are local oscillators for backward locomotion

Author:

Gao Shangbang1ORCID,Guan Sihui Asuka234,Fouad Anthony D5,Meng Jun234,Kawano Taizo2,Huang Yung-Chi6,Li Yi1,Alcaire Salvador234,Hung Wesley2,Lu Yangning234,Qi Yingchuan Billy7ORCID,Jin Yishi7ORCID,Alkema Mark6,Fang-Yen Christopher58ORCID,Zhen Mei234ORCID

Affiliation:

1. Key Laboratory of Molecular Biophysics of the Ministry of Education, College of Life Science and Technology, Huazhong University of Science and Technology, Wuhan, China

2. Lunenfeld-Tanenbaum Research Institute, Mount Sinai Hospital, Toronto, Canada

3. Department of Molecular Genetics, University of Toronto, Toronto, Canada

4. Department of Physiology, University of Toronto, Toronto, Canada

5. Department of Bioengineering, School of Engineering and Applied Science, University of Pennsylvania, Philadelphia, United States

6. Department of Neurobiology, University of Massachusetts Medical School, Worcester, United States

7. Neurobiology Section, Division of Biological Sciences, University of California, San Diego, United States

8. Department of Neuroscience, University of Pennsylvania, Philadelphia, United States

Abstract

Cell- or network-driven oscillators underlie motor rhythmicity. The identity of C. elegans oscillators remains unknown. Through cell ablation, electrophysiology, and calcium imaging, we show: (1) forward and backward locomotion is driven by different oscillators; (2) the cholinergic and excitatory A-class motor neurons exhibit intrinsic and oscillatory activity that is sufficient to drive backward locomotion in the absence of premotor interneurons; (3) the UNC-2 P/Q/N high-voltage-activated calcium current underlies A motor neuron’s oscillation; (4) descending premotor interneurons AVA, via an evolutionarily conserved, mixed gap junction and chemical synapse configuration, exert state-dependent inhibition and potentiation of A motor neuron’s intrinsic activity to regulate backward locomotion. Thus, motor neurons themselves derive rhythms, which are dually regulated by the descending interneurons to control the reversal motor state. These and previous findings exemplify compression: essential circuit properties are conserved but executed by fewer numbers and layers of neurons in a small locomotor network.

Funder

Canadian Institutes of Health Research

Natural Sciences and Engineering Research Council of Canada

National Institutes of Health

National Natural Science Foundation of China

Junior Thousand Talents Program of China

Wuhan Morning Light Plan of Youth Science and Technology

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

Reference90 articles.

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