Related Experiment Video
Updated: Aug 11, 2026

Quantitative Approaches for Studying Cellular Structures and Organelle Morphology in Caenorhabditis elegans
Published on: July 5, 2019
FGF negatively regulates muscle membrane extension in Caenorhabditis elegans
Scott J Dixon1, Mariam Alexander, Raynah Fernandes
1Department of Medical Genetics and Microbiology, Donnelly Centre for Cellular and Biomolecular Research, University of Toronto, Toronto, ON, M5S 1A, Canada.
Abstract:
Striated muscles from Drosophila and several vertebrates extend plasma membrane to facilitate the formation of the neuromuscular junction (NMJ) during development. However, the regulation of these membrane extensions is poorly understood. In C. elegans, the body wall muscles (BWMs) also have plasma membrane extensions called muscle arms that are guided to the motor axons where they form the postsynaptic element of the NMJ. To investigate the regulation of muscle membrane extension, we screened 871 genes by RNAi for ectopic muscle membrane extensions (EMEs) in C. elegans. We discovered that an FGF pathway, including let-756(FGF), egl-15(FGF receptor), sem-5(GRB2) and other genes negatively regulates plasma membrane extension from muscles. Although compromised FGF pathway activity results in EMEs, hyperactivity of the pathway disrupts larval muscle arm extension, a phenotype we call muscle arm extension defective or MAD. We show that expression of egl-15 and sem-5 in the BWMs are each necessary and sufficient to prevent EMEs. Furthermore, we demonstrate that let-756 expression from any one of several tissues can rescue the EMEs of let-756 mutants, suggesting that LET-756 does not guide muscle membrane extensions. Our screen also revealed that loss-of-function in laminin and integrin components results in both MADs and EMEs, the latter of which are suppressed by hyperactive FGF signaling. Our data are consistent with a model in which integrins and laminins are needed for directed muscle arm extension to the nerve cords, while FGF signaling provides a general mechanism to regulate muscle membrane extension.
Insights
The FGF pathway negatively regulates muscle membrane extensions, crucial for neuromuscular junction formation. Disrupting this pathway causes abnormal muscle arm development in C. elegans.
Area of Science:
- Developmental Biology
- Cell Biology
- Neuroscience
Background:
- Striated muscles form neuromuscular junctions (NMJs) via plasma membrane extensions.
- Regulation of these essential membrane extensions remains poorly understood.
- C. elegans body wall muscles (BWMs) extend muscle arms to form postsynaptic NMJ elements.
Purpose of the Study:
- Investigate the genetic regulation of muscle membrane extension.
- Identify factors controlling muscle arm formation and guidance.
- Elucidate the role of the FGF pathway in muscle membrane development.
Main Methods:
- Conducted an RNA interference (RNAi) screen of 871 genes in C. elegans.
- Assessed phenotypes for ectopic muscle membrane extensions (EMEs) and muscle arm extension defects (MADs).
- Analyzed gene expression and functional necessity/sufficiency in BWMs.
Main Results:
- Identified an FGF pathway (let-756, egl-15, sem-5) as a negative regulator of muscle membrane extension.
- FGF pathway hyperactivity caused muscle arm extension defects (MADs), while reduced activity led to ectopic extensions (EMEs).
- Loss of laminin and integrin components resulted in both MADs and EMEs, with EMEs suppressed by hyperactive FGF signaling.
Conclusions:
- FGF signaling acts as a general regulator of muscle membrane extension.
- Integrins and laminins are essential for directed muscle arm extension to target neurons.
- A model proposes integrins/laminins for guidance and FGF signaling for general regulation of muscle membrane extension.

