Global change calls for novel plant protection: reviewing the potential of omnivorous plant-inhabiting arthropods as predators and plant defence inducers

Current Opinion in Insect Science - Tập 47 - Trang 103-110 - 2021
Nina Xiaoning Zhang1, Jörg G Stephan2, Christer Björkman1, Adriana Puentes1
1Swedish University of Agricultural Sciences, Department of Ecology, P.O. Box 7044, SE-750 07 Uppsala, Sweden
2Swedish University of Agricultural Sciences, SLU Swedish Species Information Centre, Almas allé 8E, SE-756 51 Uppsala, Sweden

Tài liệu tham khảo

Sala, 2000, Global biodiversity scenarios for the year 2100, Science, 287, 1770, 10.1126/science.287.5459.1770 Tylianakis, 2008, Global change and species interactions in terrestrial ecosystems, Ecol Lett, 11, 1351, 10.1111/j.1461-0248.2008.01250.x Sage, 2020, Global change biology: a primer, Glob Change Biol, 26, 3, 10.1111/gcb.14893 Jactel, 2019, Responses of forest insect pests to climate change: not so simple, Curr Opin Insect Sci, 35, 103, 10.1016/j.cois.2019.07.010 Hamann, 2021, Climate change alters plant–herbivore interactions, New Phytol, 229, 1894, 10.1111/nph.17036 Økland, 2019, Range expansion of the small spruce bark beetle Ips amitinus: a newcomer in northern Europe, Agric For Entomol, 21, 286, 10.1111/afe.12331 Harvey, 2020, Climate change-mediated temperature extremes and insects: from outbreaks to breakdowns, Glob Change Biol, 26, 6685, 10.1111/gcb.15377 Möhring, 2020, Pathways for advancing pesticide policies, Nat Food, 1, 535, 10.1038/s43016-020-00141-4 Deguine, 2021, Integrated pest management: good intentions, hard realities. A review, Agron Sustain Dev, 41, 38, 10.1007/s13593-021-00689-w Liman, 2017, Enhanced leaf nitrogen status stabilizes omnivore population density, Oecologia, 183, 57, 10.1007/s00442-016-3742-y McLeod, 2020, The multiple meanings of omnivory influence empirical, modular theory and whole food web stability relationships, J Anim Ecol, 00, 1 Abdala-Roberts, 2019, Tri-trophic interactions: bridging species, communities and ecosystems, Ecol Lett, 22, 2151, 10.1111/ele.13392 Stenberg, 2015, Optimizing crops for ciocontrol of pests and disease, Trends Plant Sci, 20, 698, 10.1016/j.tplants.2015.08.007 Bouagga, 2018, Orius laevigatus strengthens its role as a biological control agent by inducing plant defenses, J Pest Sci, 91, 55, 10.1007/s10340-017-0886-4 Bouagga, 2018, Zoophytophagous mirids provide pest control by inducing direct defences, antixenosis and attraction to parasitoids in sweet pepper plants, Pest Manag Sci, 74, 1286, 10.1002/ps.4838 Zhang, 2018, Phytophagy of omnivorous predator Macrolophus pygmaeus affects performance of herbivores through induced plant defences, Oecologia, 186, 101, 10.1007/s00442-017-4000-7 Zhang, 2019, Herbivores avoid host plants previously exposed to their omnivorous predator Macrolophus pygmaeus, J Pest Sci, 92, 737, 10.1007/s10340-018-1036-3 Pérez-Hedo, 2018, Induced tomato plant resistance against Tetranychus urticae triggered by the phytophagy of Nesidiocoris tenuis, Front Plant Sci, 9, 10.3389/fpls.2018.01419 Stephan, 2017, Consumptive and nonconsumptive effect ratios depend on interaction between plant quality and hunting behavior of omnivorous predators, Ecol Evol, 7, 2327, 10.1002/ece3.2828 Puentes, 2018, A systematic review on the effects of plant-feeding by omnivorous arthropods: time to catch-up with the mirid-tomato bias?, Front Ecol Evol, 6, 10.3389/fevo.2018.00218 Martorana, 2019, Egg parasitoid exploitation of plant volatiles induced by single or concurrent attack of a zoophytophagous predator and an invasive phytophagous pest, Sci Rep, 9, 10.1038/s41598-019-55396-0 Cruz-Miralles, 2019, Zoophytophagous mites can trigger plant-genotype specific defensive responses affecting potential prey beyond predation: the case of Euseius stipulatus and Tetranychus urticae in citrus, Pest Manag Sci, 75, 1962, 10.1002/ps.5309 Pérez-Hedo, 2018, Biological activity and specificity of Miridae-induced plant volatiles, BioControl, 63, 203, 10.1007/s10526-017-9854-4 Aerts, 2021, Multiple levels of crosstalk in hormone networks regulating plant defense, Plant J, 105, 489, 10.1111/tpj.15124 Pappas, 2015, Beyond predation: the zoophytophagous predator Macrolophus pygmaeus induces tomato resistance against spider mites, PLoS One, 10, 10.1371/journal.pone.0127251 Rim, 2018, An omnivorous arthropod, Nesidiocoris tenuis, induces gender-specific plant volatiles to which conspecific males and females respond differently, Arthropod-Plant Interact, 12, 495, 10.1007/s11829-018-9612-2 Pérez‐Hedo, 2021, Use of zoophytophagous mirid bugs in horticultural crops: current challenges and future perspectives, Pest Manag Sci, 77, 33, 10.1002/ps.6043 Pérez-Aguilar, 2019, Impact of the zoophytophagous predator Engytatus varians (Hemiptera: Miridae) on Bactericera cockerelli (Hemiptera: Triozidae) control, Biol Control, 132, 29, 10.1016/j.biocontrol.2018.12.009 Dumont, 2019, Can isogroup selection of highly zoophagous lines of a zoophytophagous bug improve biocontrol of spider mites in apple orchards?, Insects, 10, 303, 10.3390/insects10090303 Dalin, 2011, Global land-use change and the importance of zoophytophagous bugs in biological control: coppicing willows as a timely example, Biol Control, 59, 6, 10.1016/j.biocontrol.2011.01.010 Rodriguez-Saona, 2005, Induced plant responses to multiple damagers: differential effects on an herbivore and its parasitoid, Oecologia, 143, 566, 10.1007/s00442-005-0006-7 Agrawal, 1998, Induced responses to herbivory and increased plant performance, Science, 279, 1201, 10.1126/science.279.5354.1201 Agrawal, 2000, What omnivores eat: direct effects of induced plant resistance on herbivores and indirect consequences for diet selection by omnivores, J Anim Ecol, 69, 525, 10.1046/j.1365-2656.2000.00416.x Janssen, 2003, Poor host plant quality causes omnivore to consume predator eggs, J Anim Ecol, 72, 478, 10.1046/j.1365-2656.2003.00717.x Polis, 1989, The ecology and evolution of intraguild predation: potential competitors that eat each other, Annu Rev Ecol Syst, 20, 297, 10.1146/annurev.es.20.110189.001501 Bouagga, 2018, Combined use of predatory mirids with Amblyseius swirskii (Acari: Phytoseiidae) to enhance pest management in sweet pepper, J Econ Entomol, 111, 1112, 10.1093/jee/toy072 Prieto, 2018, Intraguild predation between Macrolophus pygmaeus and Aphidius ervi, Bull Insectol, 1, 113 Janssen, 2006, Intraguild predation usually does not disrupt biological control, 21 Janssen, 2007, Habitat structure affects intraguild predation, Ecology, 88, 2713, 10.1890/06-1408.1 Björkman, 2011, Spatial distribution of interacting insect predators: possible roles of intraguild predation and the surrounding habitat, Basic Appl Ecol, 12, 516, 10.1016/j.baae.2011.07.006 Bouagga, 2020, Zoophytophagous predator-induced defences restrict accumulation of the tomato spotted wilt virus, Pest Manag Sci, 76, 561, 10.1002/ps.5547 Sanchez, 2018, How safe is it to rely on Macrolophus pygmaeus (Hemiptera: Miridae) as a biocontrol agent in tomato crops?, Front Ecol Evol, 6, 10.3389/fevo.2018.00132 van Lenteren, 2018, Comparative effectiveness and injury to tomato plants of three neotropical Mirid predators of Tuta absoluta (Lepidoptera: Gelechiidae), J Econ Entomol, 111, 1080, 10.1093/jee/toy057 Zhang, 2019, Plant feeding by an omnivorous predator affects plant phenology and omnivore performance, Biol Control, 135, 66, 10.1016/j.biocontrol.2019.05.006 Eubanks, 2003, The evolution of omnivory in heteropteran insects, Ecology, 84, 2549, 10.1890/02-0396 Coll, 2002, Omnivory in terrestrial arthropods: mixing plant and prey diets, Annu Rev Entomol, 47, 267, 10.1146/annurev.ento.47.091201.145209 Wheeler, 2001 Cobben, 1978 Liman, 2016, Predator refuges for conservation biological control in an intermediately disturbed system: the rise and fall of a simple solution, J Appl Ecol, 53, 1823, 10.1111/1365-2664.12709 Ingegno, 2021, Development and thermal activity thresholds of European mirid predatory bugs, Biol Control, 152, 104423, 10.1016/j.biocontrol.2020.104423 Puentes, 2015, Direct effects of elevated temperature on a tri-trophic system: Salix, leaf beetles and predatory bugs, Arthropod-Plant Interact, 9, 567, 10.1007/s11829-015-9401-0 Stenberg, 2011, Plant defence: feeding your bodyguards can be counter-productive, Basic Appl Ecol, 12, 629, 10.1016/j.baae.2011.08.007 Han, 2015, Nitrogen and water limitations in tomato plants trigger negative bottom-up effects on the omnivorous predator Macrolophus pygmaeus, J Pest Sci, 88, 685, 10.1007/s10340-015-0662-2 Gillespie, 2000, The functions of plant feeding in the omnivorous predator Dicyphus hesperus: water places limits on predation, Ecol Entomol, 25, 380, 10.1046/j.1365-2311.2000.00285.x Coll, 2008, Effects of elevated CO2 on an insect omnivore: a test for nutritional effects mediated by host plants and prey, Agric Ecosyst Environ, 123, 271, 10.1016/j.agee.2007.06.003 Albrecht, 2020, The effectiveness of flower strips and hedgerows on pest control, pollination services and crop yield: a quantitative synthesis, Ecol Lett, 23, 1488, 10.1111/ele.13576 Wäckers, 2005 Balzan, 2017, Flowering banker plants for the delivery of multiple agroecosystem services, Arthropod-Plant Interact, 11, 743, 10.1007/s11829-017-9544-2 Ebeling, 2018, Plant diversity induces shifts in the functional structure and diversity across trophic levels, Oikos, 127, 208, 10.1111/oik.04210 Silva, 2018, Attraction of three mirid predators to tomato infested by both the tomato leaf mining moth Tuta absoluta and the whitefly Bemisia tabaci, J Chem Ecol, 44, 29, 10.1007/s10886-017-0909-x Garantonakis, 2018, Tomato inoculation with the endophytic strain Fusarium solani K results in reduced feeding damage by the zoophytophagous predator Nesidiocoris tenuis, Front Ecol Evol, 6, 10.3389/fevo.2018.00126 Eschweiler, 2019, Tomato Inoculation with a non-pathogenic strain of Fusarium oxysporum enhances pest control by changing the feeding preference of an omnivorous predator, Front Ecol Evol, 7, 10.3389/fevo.2019.00213 Isbell, 2017, Benefits of increasing plant diversity in sustainable agroecosystems, J Ecol, 105, 871, 10.1111/1365-2745.12789 Walzer, 2009, Non-consumptive effects of predatory mites on thrips and its host plant, Oikos, 118, 934, 10.1111/j.1600-0706.2008.17299.x