When cheating turns into a stabilizing mechanism of plant-pollinator communities

被引:3
|
作者
Duchenne, Francois [1 ]
Aubert, Stephane [1 ]
Barreto, Elisa [1 ]
Brenes, Emanuel [2 ]
Maglianesi, Maria A. [2 ]
Santander, Tatiana [3 ]
Guevara, Esteban A. [1 ]
Graham, Catherine H. [1 ]
机构
[1] Swiss Fed Inst Forest Snow & Landscape Res WSL, Birmensdorf, Switzerland
[2] Univ Estatal Distancia UNED, Escuela Ciencias Exactas & Nat, San Pedro Montes Oca, San Jose, Costa Rica
[3] Aves & Conservac BirdLife Ecuador, Quito, Ecuador
基金
欧洲研究理事会; 瑞士国家科学基金会;
关键词
LONG COROLLAS; NECTAR; EVOLUTION; NETWORKS; CHEATERS; PERSISTENCE; COMPETITION; PARTNERS; COST;
D O I
10.1371/journal.pbio.3002434
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Mutualistic interactions, such as plant-mycorrhizal or plant-pollinator interactions, are widespread in ecological communities and frequently exploited by cheaters, species that profit from interactions without providing benefits in return. Cheating usually negatively affects the fitness of the individuals that are cheated on, but the effects of cheating at the community level remains poorly understood. Here, we describe 2 different kinds of cheating in mutualistic networks and use a generalized Lotka-Volterra model to show that they have very different consequences for the persistence of the community. Conservative cheating, where a species cheats on its mutualistic partners to escape the cost of mutualistic interactions, negatively affects community persistence. In contrast, innovative cheating occurs with species with whom legitimate interactions are not possible, because of a physiological or morphological barrier. Innovative cheating can enhance community persistence under some conditions: when cheaters have few mutualistic partners, cheat at low or intermediate frequency and the cost associated with mutualism is not too high. Under these conditions, the negative effects of cheating on partner persistence are overcompensated at the community level by the positive feedback loops that arise in diverse mutualistic communities. Using an empirical dataset of plant-bird interactions (hummingbirds and flowerpiercers), we found that observed cheating patterns are highly consistent with theoretical cheating patterns found to increase community persistence. This result suggests that the cheating patterns observed in nature could contribute to promote species coexistence in mutualistic communities, instead of necessarily destabilizing them. Mutualistic interactions, such as plant-mycorrhizal or plant-pollinator interactions, are widespread in ecological communities and frequently exploited by cheaters. This combination of theoretical model and empirical data suggests that cheating in pollination could contribute to the stability of plant-pollinator communities
引用
收藏
页数:20
相关论文
共 50 条
  • [41] The effects of rainfall on plant-pollinator interactions
    Lawson, David A.
    Rands, Sean A.
    ARTHROPOD-PLANT INTERACTIONS, 2019, 13 (04) : 561 - 569
  • [42] EQUILIBRIUM DIVERSITY IN PLANT-POLLINATOR SYSTEMS
    KING, CE
    GALLAHER, EE
    LEVIN, DA
    JOURNAL OF THEORETICAL BIOLOGY, 1975, 53 (02) : 263 - 275
  • [43] Urban drivers of plant-pollinator interactions
    Harrison, Tina
    Winfree, Rachael
    FUNCTIONAL ECOLOGY, 2015, 29 (07) : 879 - 888
  • [44] Global warming and plant-pollinator mismatches
    Gerard, Maxence
    Vanderplanck, Maryse
    Wood, Thomas
    Michez, Denis
    EMERGING TOPICS IN LIFE SCIENCES, 2020, 4 (01) : 77 - 86
  • [45] Private channels in plant-pollinator mutualisms
    Soler, Catherine
    Proffit, Magali
    Chen, Chun
    Hossaert-McKey, Martine
    PLANT SIGNALING & BEHAVIOR, 2010, 5 (07) : 893 - 895
  • [46] Data standardization of plant-pollinator interactions
    Salim, Jose A.
    Saraiva, Antonio M.
    Zermoglio, Paula F.
    Agostini, Kayna
    Wolowski, Marina
    Drucker, Debora P.
    Soares, Filipi M.
    Bergamo, Pedro J.
    Varassin, Isabela G.
    Freitas, Leandro
    Maues, Marcia M.
    Rech, Andre R.
    Veiga, Allan K.
    Acosta, Andre L.
    Araujo, Andrea C.
    Nogueira, Anselmo
    Blochtein, Betina
    Freitas, Breno M.
    Albertini, Bruno C.
    Maia-Silva, Camila
    Nunes, Carlos E. P.
    Pires, Carmen S. S.
    dos Santos, Charles F.
    Queiroz, Elisa P.
    Cartolano, Etienne A.
    de Oliveira, Favizia F.
    Amorim, Felipe W.
    Fonturbel, Francisco E.
    da Silva, Gleycon, V
    Consolaro, Helder
    Alves-dos-Santos, Isabel
    Machado, Isabel C.
    Silva, Juliana S.
    Aleixo, Katia P.
    Carvalheiro, Luisa G.
    Rocca, Marcia A.
    Pinheiro, Mardiore
    Hrncir, Michael
    Streher, Nathalia S.
    Ferreira, Patricia A.
    de Albuquerque, Patricia M. C.
    Maruyama, Pietro K.
    Borges, Rafael C.
    Giannini, Tereza C.
    Brito, Vinicius L. G.
    GIGASCIENCE, 2022, 11
  • [47] Data standardization of plant-pollinator interactions
    Salim, Jose A.
    Saraiva, Antonio M.
    Zermoglio, Paula F.
    Agostini, Kayna
    Wolowski, Marina
    Drucker, Debora P.
    Soares, Filipi M.
    Bergamo, Pedro J.
    Varassin, Isabela G.
    Freitas, Leandro
    Maues, Marcia M.
    Rech, Andre R.
    Veiga, Allan K.
    Acosta, Andre L.
    Araujo, Andrea C.
    Nogueira, Anselmo
    Blochtein, Betina
    Freitas, Breno M.
    Albertini, Bruno C.
    Maia-Silva, Camila
    Nunes, Carlos E. P.
    Pires, Carmen S. S.
    dos Santos, Charles F.
    Queiroz, Elisa P.
    Cartolano, Etienne A.
    de Oliveira, Favizia F.
    Amorim, Felipe W.
    Fonturbel, Francisco E.
    da Silva, Gleycon, V
    Consolaro, Helder
    Alves-dos-Santos, Isabel
    Machado, Isabel C.
    Silva, Juliana S.
    Aleixo, Katia P.
    Carvalheiro, Luisa G.
    Rocca, Marcia A.
    Pinheiro, Mardiore
    Hrncir, Michael
    Streher, Nathalia S.
    Ferreira, Patricia A.
    de Albuquerque, Patricia M. C.
    Maruyama, Pietro K.
    Borges, Rafael C.
    Giannini, Tereza C.
    Brito, Vinicius L. G.
    GIGASCIENCE, 2022, 11
  • [48] Determinants of the microstructure of plant-pollinator networks
    Kaiser-Bunbury, Christopher N.
    Vazquez, Diego P.
    Stang, Martina
    Ghazoul, Jaboury
    ECOLOGY, 2014, 95 (12) : 3314 - 3324
  • [49] Why are plant-pollinator networks nested?
    Pawar, Samraat
    SCIENCE, 2014, 345 (6195) : 383 - 383
  • [50] Climate mediates roles of pollinator species in plant-pollinator networks
    Saunders, Manu E.
    Kendall, Liam K.
    Lanuza, Jose B.
    Hall, Mark A.
    Rader, Romina
    Stavert, Jamie R.
    GLOBAL ECOLOGY AND BIOGEOGRAPHY, 2023, 32 (04): : 511 - 518