Comparison of solitary and collective foraging strategies of Caenorhabditis elegans in patchy food distributions
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Accepted version
Supporting information
Author(s)
Ding, Siyu Serena
Muhle, Leah Sophie
Brown, Andre
Schumacher, Linus
Endres, Robert
Type
Journal Article
Abstract
Collective foraging has been shown to benefit organisms in environments where food is patchily distributed, but whether this is true in the case where organisms do not rely on long range communications to coordinate their collective behaviour has been understudied. To address this question, we use the tractable laboratory model organism Caenorhabditis elegans, where a social strain (npr-1 mutant) and a solitary strain (N2) are available for direct
comparison of foraging strategies. We first developed an on-lattice minimal model for comparing collective and solitary foraging strategies, finding that social agents benefit from feeding faster and more efficiently simply due to group formation. Our laboratory foraging experiments with npr-1 and N2 worm populations, however, show an advantage for solitary N2 in all food distribution environments that we tested. We incorporated additional strain43 specific behavioural parameters of npr-1 and N2 worms into our model and computationally identified N2’s higher feeding rate to be the key factor underlying its advantage, without which it is possible to recapitulate the advantage of collective foraging in patchy environments. Our work highlights the theoretical advantage of collective foraging due to group formation alone without long-range interactions, and the valuable role of modelling to guide experiments.
comparison of foraging strategies. We first developed an on-lattice minimal model for comparing collective and solitary foraging strategies, finding that social agents benefit from feeding faster and more efficiently simply due to group formation. Our laboratory foraging experiments with npr-1 and N2 worm populations, however, show an advantage for solitary N2 in all food distribution environments that we tested. We incorporated additional strain43 specific behavioural parameters of npr-1 and N2 worms into our model and computationally identified N2’s higher feeding rate to be the key factor underlying its advantage, without which it is possible to recapitulate the advantage of collective foraging in patchy environments. Our work highlights the theoretical advantage of collective foraging due to group formation alone without long-range interactions, and the valuable role of modelling to guide experiments.
Date Issued
2020-09-14
Date Acceptance
2020-02-09
Citation
Philosophical Transactions of the Royal Society B: Biological Sciences, 2020, 375 (1807)
ISSN
0962-8436
Publisher
Royal Society, The
Journal / Book Title
Philosophical Transactions of the Royal Society B: Biological Sciences
Volume
375
Issue
1807
Copyright Statement
© 2020 The Authors. Published by the Royal Society. All rights reserved.
Sponsor
Biotechnology and Biological Sciences Research Council (BBSRC)
Grant Number
BB/N00065X/1
Subjects
C. elegans
collective behaviour
fitness
foraging strategy
on-lattice simulation
Evolutionary Biology
06 Biological Sciences
11 Medical and Health Sciences
Publication Status
Published
Date Publish Online
2020-06-27