An unusual potassium conductance protects <i>Caenorhabditis elegans</i> pharyngeal muscle rhythms against environmental noise

M Max Kenngott (Volen Center for Complex Systems) P Piali Sengupta S Shawn Lockery (Institute of Neuroscience) E Eve Marder (Department of Biology)

Abstract

The nematode Caenorhabditis elegans feeds by rhythmic contraction and relaxation of a neuromuscular organ called the pharynx, which draws in and filters water and bacterial food. This behavior is driven by myogenic plateau potentials, long-lasting depolarizations of the pharyngeal muscle, which are timed by neuronal input from a dedicated pharyngeal nervous system. While the timing of these plateaus’ initiation has received significant attention, their mechanisms of termination remain incompletely understood. In particular, it is unclear how plateaus resist early termination by hyperpolarizing current noise. Here, we present a computational model of pharyngeal plateaus against a noisy background. We propose that an unusual, rapidly inactivating potassium conductance confers exceptional noise robustness on the system. We further investigate the possibility that a similar mechanism in other systems permits switching between plateau and spiking behavior under noisy conditions.

Article Details

Volume / Issue Vol. 122, Issue 14
Published April 08, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (4)

M

Max Kenngott

Volen Center for Complex Systems

P

Piali Sengupta

S

Shawn Lockery

Institute of Neuroscience

E

Eve Marder

Department of Biology