AI Article Synopsis

  • The study investigates how differences in the anatomical features of the lateral line system in fish affect their collective behaviors, specifically shoaling.
  • Researchers focused on two distinct fish species and their hybrids, finding that larger canal pore sizes and fewer superficial neuromasts lead to closer proximity among fish during group behaviors.
  • Hydrodynamic modeling demonstrated that canal-based sensors are more effective in detecting nearby fish movements, suggesting a mechanism for how fish sense and respond to their neighbors in a group setting.

Article Abstract

The lateral line system of fishes provides cues for collective behaviour, such as shoaling, but it remains unclear how anatomical lateral line variation leads to behavioural differences among species. Here we studied associations between lateral line morphology and collective behaviour using two morphologically divergent species and their second-generation hybrids. We identify collective behaviours associated with variation in canal and superficial lateral line morphology, with closer proximities to neighbouring fish associated with larger canal pore sizes and fewer superficial neuromasts. A mechanistic understanding of the observed associations was provided by hydrodynamic modelling of an artificial lateral line sensor, which showed that simulated canal-based neuromasts were less susceptible to saturation during unidirectional movement than simulated superficial neuromasts, while increasing the canal pore size of the simulated lateral line sensor elevated sensitivity to vortices shed by neighbouring fish. Our results propose a mechanism behind lateral line flow sensing during collective behaviour in fishes.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9874273PMC
http://dx.doi.org/10.1098/rsos.221478DOI Listing

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