Complex interactions can create persistent fluctuations in high-diversity ecosystems.
Journal
PLoS computational biology
ISSN: 1553-7358
Titre abrégé: PLoS Comput Biol
Pays: United States
ID NLM: 101238922
Informations de publication
Date de publication:
05 2020
05 2020
Historique:
received:
04
11
2019
accepted:
27
03
2020
entrez:
16
5
2020
pubmed:
16
5
2020
medline:
29
8
2020
Statut:
epublish
Résumé
When can ecological interactions drive an entire ecosystem into a persistent non-equilibrium state, where many species populations fluctuate without going to extinction? We show that high-diversity spatially heterogeneous systems can exhibit chaotic dynamics which persist for extremely long times. We develop a theoretical framework, based on dynamical mean-field theory, to quantify the conditions under which these fluctuating states exist, and predict their properties. We uncover parallels with the persistence of externally-perturbed ecosystems, such as the role of perturbation strength, synchrony and correlation time. But uniquely to endogenous fluctuations, these properties arise from the species dynamics themselves, creating feedback loops between perturbation and response. A key result is that fluctuation amplitude and species diversity are tightly linked: in particular, fluctuations enable dramatically more species to coexist than at equilibrium in the very same system. Our findings highlight crucial differences between well-mixed and spatially-extended systems, with implications for experiments and their ability to reproduce natural dynamics. They shed light on the maintenance of biodiversity, and the strength and synchrony of fluctuations observed in natural systems.
Identifiants
pubmed: 32413026
doi: 10.1371/journal.pcbi.1007827
pii: PCOMPBIOL-D-19-01928
pmc: PMC7228057
doi:
Types de publication
Journal Article
Research Support, Non-U.S. Gov't
Langues
eng
Sous-ensembles de citation
IM
Pagination
e1007827Déclaration de conflit d'intérêts
The authors have declared that no competing interests exist.
Références
Proc Natl Acad Sci U S A. 2018 Feb 27;115(9):2156-2161
pubmed: 29440487
Phys Rev Lett. 1992 Sep 7;69(10):1616-1619
pubmed: 10046267
Ecol Lett. 2013 May;16 Suppl 1:106-15
pubmed: 23346947
Nature. 1972 Aug 18;238(5364):413-4
pubmed: 4559589
Ecol Lett. 2017 Dec;20(12):1534-1545
pubmed: 29067791
Trends Ecol Evol. 1989 Aug;4(8):238-40
pubmed: 21227358
Proc Natl Acad Sci U S A. 2013 Jan 22;110(4):1232-6
pubmed: 23297213
Nature. 1993 Jul 15;364(6434):229-32
pubmed: 8321317
Ecol Lett. 2018 Sep;21(9):1299-1310
pubmed: 29968312
Phys Rev Lett. 1988 Jul 18;61(3):259-262
pubmed: 10039285
PLoS One. 2014 Nov 10;9(11):e112903
pubmed: 25384058
Nat Commun. 2016 Aug 24;7:12457
pubmed: 27555100
Ecology. 2019 Feb;100(2):e02586
pubmed: 30556129
Proc Natl Acad Sci U S A. 2003 Oct 28;100(22):12765-70
pubmed: 14569008
Trends Ecol Evol. 1989 Jan;4(1):26-8
pubmed: 21227309
Nat Commun. 2017 Feb 24;8:
pubmed: 28233768
Phys Rev E Stat Nonlin Soft Matter Phys. 2015 Apr;91(4):042705
pubmed: 25974525
Am Nat. 1993 Dec.;142(6):911-927
pubmed: 29519140
Trends Ecol Evol. 1996;11(1):33-7
pubmed: 21237757
Trends Ecol Evol. 2000 Nov 1;15(11):460-464
pubmed: 11050349
Science. 1974 Nov 15;186(4164):645-7
pubmed: 4412202
J Theor Biol. 1981 May 21;90(2):213-39
pubmed: 7311579