Geographic dispersion of invasive crop pests: the role of basal, plastic climate stress tolerance and other complementary traits in the tropics

Current Opinion in Insect Science - Tập 50 - Trang 100878 - 2022
Casper Nyamukondiwa1,2, Honest Machekano1,3, Frank Chidawanyika4,5, Reyard Mutamiswa5,6, Gang Ma7, Chu-Sen Ma7
1Botswana International University of Science and Technology, Palapye, Botswana
2Department of Zoology and Entomology, Rhodes University, Makhanda 6140, South Africa
3Department of Zoology and Entomology, University of Pretoria, Private Bag X20, Hatfield, Pretoria 0028, South Africa
4International Centre of Insect Physiology and Ecology (ICIPE), P.O Box 30772-0 010 0, Nairobi, Kenya
5Department of Zoology and Entomology, University of the Free State, P. O. Box 339, Bloemfontein 9300, South Africa
6Tugwi-Mukosi Multidisciplinary Research Institute, Midlands State University, P. Bag 9055, Gweru, Zimbabwe
7Climate Change Biology Research Group, State Key Laboratory for Biology of Plant Diseases and Insect Pests, Institute of Plant Protection, Chinese Academy of Agricultural Sciences, China

Tài liệu tham khảo

Tilman, 2001, Forecasting agricultural driven environmental change, Science, 292, 281, 10.1126/science.1057544

2013

Wan, 2016, Invasion and management of agricultural alien insects in China, Ann Rev Entomol, 61, 77, 10.1146/annurev-ento-010715-023916

Diagne, 2021, High and rising economic costs of biological invasions worldwide, Nature, 592, 571, 10.1038/s41586-021-03405-6

Bradshaw, 2016, Massive yet grossly underestimated global costs of invasive species, Nat Comm, 7, 10.1038/ncomms12986

Nangombe, 2018, Record-breaking climate extremes in Africa under stabilized 1.5 °C and 2 °C Global warming scenarios, Nat Clim Change, 8, 375, 10.1038/s41558-018-0145-6

Pratt, 2017, Economic impacts of alien invasive species on African smallholder livelihoods, Glob Food Secur, 14, 31, 10.1016/j.gfs.2017.01.011

Richardson, 2006, Plant invasions-merging the concepts of species invasiveness and community invisibility, Prog Phys Geogr, 30, 409, 10.1191/0309133306pp490pr

Mack, 2000, Biotic invasions: causes, epidemiology, global consequences, and control, Ecol App, 10, 689, 10.1890/1051-0761(2000)010[0689:BICEGC]2.0.CO;2

Alexander, 2014, Existing and emerging high impact invasive species are characterised by higher functional responses than natives, Biol Lett, 10, 10.1098/rsbl.2013.0946

Smit, 2021, Metabolic responses to starvation and feeding contribute to the invasiveness of an emerging pest insect, J Insect Physiol, 128, 10.1016/j.jinsphys.2020.104162

Stokstad, 2017, New crop pest takes Africa at lightning speed, Science, 356, 473, 10.1126/science.356.6337.473

Tarusikirwa, 2020, Tuta absoluta (Meyrick) (Lepidoptera: Gelechiidae) on the offensive in Africa: prospects for integrated management initiatives, Insects, 764

Weldon, 2018, Geographic variation and plasticity in climate stress resistance among southern African populations of Ceratitis capitata (Wiedemann) (Diptera: Tephritidae), Sci Rep, 8, 10.1038/s41598-018-28259-3

Chidawanyika, 2019, Global climate change as a diversity of bottom-up and top-down factors in agricultural landscapes and the fate of host-parasitoids interactions, Front Ecol Evol, 7, 10.3389/fevo.2019.00080

Simberloff, 2009, The role of propagule pressure in the biological invasions, Ann Rev Ecol Evol Syst, 40, 81, 10.1146/annurev.ecolsys.110308.120304

Ricciardi, 2021, Four priority areas to advance invasion science in the face of environmental change, Environ Rev, 29, 1, 10.1139/er-2020-0088

Ma, 2021, Survive a warming climate: insect responses to extreme high temperatures, Ann Rev Entomol, 66, 163, 10.1146/annurev-ento-041520-074454

Kang, 2009, Roles of thermal adaptation and chemical ecology in Liriomyza distribution and control, Annu Rev Entomol, 54, 127, 10.1146/annurev.ento.54.110807.090507

Ju, 2013, Tolerance to high temperature extremes in an invasive Lace bug, Corythucha ciliata (Hemiptera: Tingidae), in subtropical China, PLoS One, 8, 10.1371/journal.pone.0054372

Lü, 2014, Increased survival and prolonged longevity mainly contribute to the temperature-adaptive evolutionary strategy in invasive Bemisia tabaci Middle East Asia Minor 1, J Insect Sci, 14, 10.1093/jisesa/ieu005

Boher, 2016, Ectotherms in variable thermal landscapes: a physiological evaluation of the invasive potential of fruit flies species, Front Physiol, 7, 10.3389/fphys.2016.00302

Yu, 2012, Different thermal tolerance and hsp gene expression in invasive and indigenous biotypes of Bemisia tabaci, Biol Inv, 14, 1587, 10.1007/s10530-012-0171-7

Käfer, 2020, Temperature tolerance and thermal environment of European seed bugs, Insects, 11, 10.3390/insects11030197

Mutamiswa, 2017, Dominance of spotted stemborer Chilo partellus Swinhoe (Lepidoptera: Crambidae) over indigenous stemborer species in Africa’s changing climates: ecological and thermal biology perspectives, Agric For Entomol, 19, 344, 10.1111/afe.12217

Nyamukondiwa, 2010, Within-generation variation of critical thermal limits in adult Mediterranean and Natal fruit flies Ceratitis capitata and Ceratitis rosa: thermal history affects short-term responses to temperature, Physiol Entomol, 35, 255, 10.1111/j.1365-3032.2010.00736.x

Mutamiswa, 2021, Desiccation and temperature resistance of the larger grain borer, Prostephanus truncatus (Horn) (Coleoptera: Bostrichidae): pedestals for invasion success?, Physiol Entomol, 46, 157, 10.1111/phen.12355

Ghalambor, 2007, Adaptive versus non-adaptive phenotypic plasticity and the potentials for contemporary adaptation in new environments, Func Ecol, 21, 394, 10.1111/j.1365-2435.2007.01283.x

van Heerwaarden, 2016, Limited scope for plasticity to increase upper thermal limits, Funct Ecol, 30, 1947, 10.1111/1365-2435.12687

Deutsch, 2008, Impacts of climate warming on terrestrial ectotherms across latitude, Proc Nat Acad Sci U S A, 105, 6668, 10.1073/pnas.0709472105

Overgaard, 2011, Thermal tolerance in widespread and tropical Drosophila species: does phenotypic plasticity increase with latitude?, Am Nat, 178, 580, 10.1086/661780

Machekano, 2021, Limited thermal plasticity may constrain ecosystem function in a basally heat tolerant tropical telecoprid dung beetle, Allogymnopleurus thalassinus (Klug, 1855), Sci Rep, 11, 10.1038/s41598-021-01478-x

Stamp, 2020, The relative importance of plasticity versus genetic differentiation in explaining between population differences; a meta-analysis, Ecol Lett, 10, 1432, 10.1111/ele.13565

Chown, 2007, Phenotypic plasticity mediates climate change responses among invasive and indigenous arthropods, Proc Roy Soc B, 274, 2531, 10.1098/rspb.2007.0772

Beaman, 2016, Evolution of plasticity: mechanistic link between development and reversible acclimation, Trends Ecol Evol, 31, 237, 10.1016/j.tree.2016.01.004

Lee, 2020, Thermal transgenerational effects remain after two generations, Ecol Evol, 10, 11296, 10.1002/ece3.6767

Cavieres, 2019, Transgenerational and within-generation plasticity shape thermal performance curves, Ecol Evol, 9, 2072, 10.1002/ece3.4900

Manfredini, 2019, A potential role for phenotypic plasticity in invasion and declines of social insects, Front Ecol Evol, 7, 10.3389/fevo.2019.00375

McGaughran, 2021, Evolutionary responses to warming, Trends Ecol Evol, 36, 591, 10.1016/j.tree.2021.02.014

Nyamukondiwa, 2011, Basal cold but not heat tolerance constrains plasticity among Drosophila species (Diptera: Drosophilidae), J Evol Biol, 24, 1927, 10.1111/j.1420-9101.2011.02324.x

Quellhorst, 2020, Temperature-mediated competition between the invasive larger grain borer (Coleoptera: Bostrichidae) and the cosmopolitan maize weevil (Coleoptera: Curculionidae), Environ Entomol, 49, 255, 10.1093/ee/nvz151

Stockton, 2018, Phenotypic plasticity promotes overwintering survival in a globally invasive crop pest, Drosophila suzukii, Insects, 9, 10.3390/insects9030105

Logan, 2020, The evolutionary potential of an insect invader under climate change, Evolution, 74, 132, 10.1111/evo.13862

Tourneur, 2020, Variations in seasonal (not mean) temperatures drive rapid adaptations to novel environments at a continent scale, Ecology, 101, 10.1002/ecy.2973

Foucaud, 2013, Thermotolerance adaptation to human-modified habitats occurs in the native range of the invasive ant Wasmannia auropunctata before long-distance dispersal, Evol Appl, 6, 721, 10.1111/eva.12058

Sherpa, 2021, The evolutionary dynamics of biological invasions: a multi-approach perspective, Evol Appl, 14, 1463, 10.1111/eva.13215

Pélissié, 2018, Rapid evolution in insect pests: the importance of space and time in population genomics studies, Curr Opin Insect Sci, 26, 8, 10.1016/j.cois.2017.12.008

Colautti, 2017, Invasions and extinctions through the looking glass of evolutionary ecology, Philos Trans R Soc B, 372, 10.1098/rstb.2016.0031

Liebhold, 2016, Eradication of invading insect populations: from concepts to applications, Ann Rev Entomol, 61, 335, 10.1146/annurev-ento-010715-023809

Nyamukondiwa, 2009, Thermal tolerance in adult Mediterranean and Natal fruit flies (Ceratitis capitata and Ceratitis rosa): effects of age, gender and feeding status, J Therm Biol, 34, 406, 10.1016/j.jtherbio.2009.09.002

Gotcha, 2018, Plasticity and cross-tolerance to heterogeneous environments: divergent stress responses co-evolved in an African fruit fly, J Evol Biol, 31, 98, 10.1111/jeb.13201

Little, 2020, Plasticity is key to success of Drosophila suzukii (Diptera: Drosophilidae) invasion, J Insect Sci, 20, 10.1093/jisesa/ieaa034

Rendon, 2019, Drip and overhead sprinkler irrigation in blueberry as cultural control for Drosophila suzukii (Diptera: Drosophilidae) in North-western United States, J Econom Entomol, 112, 745, 10.1093/jee/toy395

Piiroinen, 2013, Stress for invasion success? Temperature stress of preceding generations modifies the response to insecticide stress in an invasive pest insect, Evol Appl, 6, 313, 10.1111/eva.12001

Parkash, 2021, Developmental and adult acclimation impact cold and drought survival of invasive tropical Drosophila kikkawai, Biol Open, 10, 10.1242/bio.058527

Invasive Species Specialist Group, 2021