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Community‐wide seasonal shifts in thermal tolerances of mosquitoes
Author(s) -
Oliveira Brunno F.,
Yogo Wendtwoin I. G.,
Hahn Daniel A.,
Yongxing Jiang,
Scheffers Brett R.
Publication year - 2021
Publication title -
ecology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.144
H-Index - 294
eISSN - 1939-9170
pISSN - 0012-9658
DOI - 10.1002/ecy.3368
Subject(s) - temperate climate , seasonality , latitude , tropics , ecology , atmospheric sciences , forcing (mathematics) , tropical climate , environmental science , biology , thermal , climatology , geography , meteorology , geology , geodesy
The broadening in species’ thermal tolerance limits and breadth from tropical to temperate latitudes is proposed to reflect spatial gradients in temperature seasonality, but the importance of seasonal shifts in thermal tolerances within and across locations is much less appreciated. We performed thermal assays to examine the maximum and minimum critical temperatures (CT max and CT min , respectively) of a mosquito community across their active seasons. Mosquito CT min tracked seasonal shifts in temperature, whereas CT max tracked a countergradient pattern with lowest heat tolerances in summer. Mosquito thermal breadth decreased from spring to summer and then increased from summer to autumn. We show a temporal dichotomy in thermal tolerances with thermal breadths of temperate organisms in summer reflecting those of the tropics (“tropicalization”) that is sandwiched between a spring and autumn “temperatization.” Therefore, our tolerance patterns at a single temperate latitude recapitulate classical patterns across latitude. These findings highlight the need to understand the temporal and spatial components of thermotolerance variation better, including plasticity and rapid seasonal selection, and the potential for this variation to affect species responses to climate change. With summers becoming longer and increasing winter nighttime temperatures, we expect increasing tropicalization of species thermal tolerances in both space and time.