Evolution of thermal tolerance in multifarious environments

被引:21
|
作者
Cambronero, Maria Cuenca [1 ]
Beasley, Jordan [1 ,2 ]
Kissane, Stephen [1 ]
Orsini, Luisa [1 ]
机构
[1] Univ Birmingham, Sch Biosci, Environm Genom Grp, Birmingham, W Midlands, England
[2] Univ Leicester, Dept Genet, Leicester, Leics, England
基金
英国生物技术与生命科学研究理事会; 英国自然环境研究理事会;
关键词
body size; CTmax; Daphnia magna; global change; haemoglobin; heat shock proteins; WATERFLEA DAPHNIA-MAGNA; CLIMATE-CHANGE; PHENOTYPIC PLASTICITY; MICROCRUSTACEAN DAPHNIA; TEMPERATURE-ACCLIMATION; ECOSYSTEMS DAPHNIA; HEAT; EXPRESSION; POPULATIONS; DROSOPHILA;
D O I
10.1111/mec.14890
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
Species extinction rates are many times greater than the direst predictions made two decades ago by environmentalists, largely because of human impact. Major concerns are associated with the predicted higher recurrence and severity of extreme events, such as heat waves. Although tolerance to these extreme events is instrumental to species survival, little is known whether and how it evolves in natural populations, and to what extent it is affected by other environmental stressors. Here, we study physiological and molecular mechanisms of thermal tolerance over evolutionary times in multifarious environments. Using the practice of "resurrection ecology" on the keystone grazer Daphnia magna, we quantified genetic and plastic differences in physiological and molecular traits linked to thermal tolerance in historical and modern genotypes of the same population. This population experienced an increase in average temperature and occurrence of heat waves, in addition to dramatic changes in water chemistry, over five decades. On genotypes resurrected across the five decades, we measured plastic and genetic differences in CTmax, body size, Hb content and differential expression of four heat shock proteins after exposure to temperature as single stress and in combination with food levels and insecticide loads. We observed evolution of the critical thermal maximum and plastic response in body size, HSP expression and Hb content over time in a warming only scenario. Molecular and physiological responses to extreme temperature in multifarious environments were not predictable from the response to warming alone. Underestimating the effect of multiple stressors on thermal tolerance can lead to wrong estimates of species evolvability and persistence.
引用
收藏
页码:4529 / 4541
页数:13
相关论文
共 50 条
  • [31] EVOLUTION IN CONSTANT AND FLUCTUATING ENVIRONMENTS - THERMAL TOLERANCES OF DESERT PUPFISH (CYPRINODON)
    BROWN, JH
    FELDMETH, CR
    [J]. EVOLUTION, 1971, 25 (02) : 390 - &
  • [32] Experimental evolution of parasite resistance in wild guppies: natural and multifarious selection
    Dargent, Felipe
    Scott, Marilyn E.
    Hendry, Andrew P.
    Fussmann, Gregor F.
    [J]. PROCEEDINGS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 2014, 281 (1794)
  • [33] Rapid evolution of Ophraella communa cold tolerance in new low-temperature environments
    Zhenqi Tian
    Guangmei Chen
    Yan Zhang
    Chao Ma
    Zhenya Tian
    Xuyuan Gao
    Hongsong Chen
    Jianying Guo
    Zhongshi Zhou
    [J]. Journal of Pest Science, 2022, 95 : 1233 - 1244
  • [34] Rapid evolution of Ophraella communa cold tolerance in new low-temperature environments
    Tian, Zhenqi
    Chen, Guangmei
    Zhang, Yan
    Ma, Chao
    Tian, Zhenya
    Gao, Xuyuan
    Chen, Hongsong
    Guo, Jianying
    Zhou, Zhongshi
    [J]. JOURNAL OF PEST SCIENCE, 2022, 95 (03) : 1233 - 1244
  • [35] Correction: Corrigendum: Rapid evolution of thermal tolerance in the water flea Daphnia
    A. N. Geerts
    J. Vanoverbeke
    B. Vanschoenwinkel
    W. Van Doorslaer
    H. Feuchtmayr
    D. Atkinson
    B. Moss
    T. A. Davidson
    C. D. Sayer
    L. De Meester
    [J]. Nature Climate Change, 2015, 5 (10) : 956 - 956
  • [36] Environmental fluctuations accelerate molecular evolution of thermal tolerance in a marine diatom
    Schaum, C. -Elisa
    Buckling, A.
    Smirnoff, N.
    Studholme, D. J.
    Yvon-Durocher, G.
    [J]. NATURE COMMUNICATIONS, 2018, 9
  • [37] Environmental fluctuations accelerate molecular evolution of thermal tolerance in a marine diatom
    C.-Elisa Schaum
    A. Buckling
    N. Smirnoff
    D. J. Studholme
    G. Yvon-Durocher
    [J]. Nature Communications, 9
  • [38] Indirect selection of thermal tolerance during experimental evolution of Drosophila melanogaster
    Condon, Catriona
    Acharya, Ajjya
    Adrian, Gregory J.
    Hurliman, Alex M.
    Malekooti, David
    Nguyen, Phivu
    Zelic, Maximilian H.
    Angilletta, Michael J., Jr.
    [J]. ECOLOGY AND EVOLUTION, 2015, 5 (09): : 1873 - 1880
  • [39] Rapid evolution of ant thermal tolerance within an urban heat island
    Diamond, S. E.
    Chick, L.
    Perez, A.
    Strickler, S. A.
    Martin, R. A.
    [J]. INTEGRATIVE AND COMPARATIVE BIOLOGY, 2017, 57 : E244 - E244
  • [40] Meiosis-Based Laboratory Evolution of the Thermal Tolerance in Kluyveromyces marxianus
    Wu, Li
    Lyu, Yilin
    Wu, Pingping
    Luo, Tongyu
    Zeng, Junyuan
    Shi, Tianfang
    Zhou, Jungang
    Yu, Yao
    Lu, Hong
    [J]. FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2022, 9