Synaptic and neural pathway redundancy enables the robustness of a sensory-motor reflex and promotes predation escape in <i>Caenorhabditis elegans</i>

H HaoMing He E Eugenia King Hin Fong (School of Biological Sciences, The University of Hong Kong) S Sandeep Kumar H Ho Ming Terence Lee (School of Biological Sciences, The University of Hong Kong) A Andrew M. Leifer M Martin Chalfie (Department of Biological Sciences, Columbia University) C Chaogu Zheng (School of Biological Sciences, The University of Hong Kong)

Abstract

As a basic unit of the nervous system, the sensory-motor reflex circuit is fast and robust. However, it is not entirely clear how this robustness is achieved, given that various genetic perturbations can alter the function of the sensory neurons. By mapping the molecular basis of neuronal connections in the touch response circuit of Caenorhabditis elegans , we found prevalent genetic redundancy at neural pathway, synaptic, and molecular levels, which ensures that sensory signals can be relayed to command interneurons that control motor output. We also found developmental remodeling of the anterior circuit, which leads to the pruning of larval synapses, establishment of a second pathway that activates additional interneurons, and lateralization of the circuit. Finally, we found that the synapses that appeared to be functionally redundant in a simple touch assay contribute to the extent of reversal response in an additive manner, which may help the organism escape from predators.

Article Details

Volume / Issue Vol. 123, Issue 22
Published June 02, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (7)

H

HaoMing He

E

Eugenia King Hin Fong

School of Biological Sciences, The University of Hong Kong

S

Sandeep Kumar

H

Ho Ming Terence Lee

School of Biological Sciences, The University of Hong Kong

A

Andrew M. Leifer

M

Martin Chalfie

Department of Biological Sciences, Columbia University

C

Chaogu Zheng

School of Biological Sciences, The University of Hong Kong