TY - JOUR
T1 - Limited thermal tolerance in tropical insects and its genomic signature
AU - Holzmann, Kim L.
AU - Schmitzer, Thomas
AU - Abels, Antonia
AU - Čorkalo, Marko
AU - Mitesser, Oliver
AU - Kortmann, Mareike
AU - Alonso-Alonso, Pedro
AU - Correa-Carmona, Yenny
AU - Pinos, Andrea
AU - Yon, Felipe
AU - Alvarado, Mabel
AU - Forsyth, Adrian
AU - Lopera-Toro, Alejandro
AU - Brehm, Gunnar
AU - Keller, Alexander
AU - Otieno, Mark
AU - Steffan-Dewenter, Ingolf
AU - Peters, Marcell K.
N1 - Publisher Copyright:
© The Author(s) 2026.
PY - 2026/3/19
Y1 - 2026/3/19
N2 - Insects make up the majority of all animal species, with 70% occurring in the tropics1, yet the impacts of warming on tropical insects remain highly uncertain2. This stems from sparse, taxonomically biased data on thermal tolerance of tropical insects and an incomplete understanding of the underlying physiological mechanisms3. Here we compared environmental temperatures with field-measured upper and lower thermal tolerance limits of around 2,300 insect species along Afrotropical and Neotropical elevational gradients and identified genomic signatures of thermal tolerance across the insect tree of life. We show that thermal tolerances do not proportionally track environmental temperatures but approach an asymptote in tropical lowlands. Insects at high elevations utilize plasticity to cope with rising temperatures, whereas lowland species have limited plastic abilities. Heat tolerance showed strong differences among insect orders and families, reflected in the thermal stability of proteins, suggesting that variation in thermal tolerance is founded in the fundamental protein architecture. Up to 52% of future surface temperatures and 38% of air temperatures in the Amazonian lowlands can cause heat mortality in half of the studied community. Our data suggest a limited capacity of insects in the Earth’s most biodiverse regions to buffer future warming.
AB - Insects make up the majority of all animal species, with 70% occurring in the tropics1, yet the impacts of warming on tropical insects remain highly uncertain2. This stems from sparse, taxonomically biased data on thermal tolerance of tropical insects and an incomplete understanding of the underlying physiological mechanisms3. Here we compared environmental temperatures with field-measured upper and lower thermal tolerance limits of around 2,300 insect species along Afrotropical and Neotropical elevational gradients and identified genomic signatures of thermal tolerance across the insect tree of life. We show that thermal tolerances do not proportionally track environmental temperatures but approach an asymptote in tropical lowlands. Insects at high elevations utilize plasticity to cope with rising temperatures, whereas lowland species have limited plastic abilities. Heat tolerance showed strong differences among insect orders and families, reflected in the thermal stability of proteins, suggesting that variation in thermal tolerance is founded in the fundamental protein architecture. Up to 52% of future surface temperatures and 38% of air temperatures in the Amazonian lowlands can cause heat mortality in half of the studied community. Our data suggest a limited capacity of insects in the Earth’s most biodiverse regions to buffer future warming.
UR - https://www.scopus.com/pages/publications/105032266259
U2 - 10.1038/s41586-026-10155-w
DO - 10.1038/s41586-026-10155-w
M3 - Artículo
C2 - 41781608
AN - SCOPUS:105032266259
SN - 0028-0836
VL - 651
SP - 672
EP - 678
JO - Nature
JF - Nature
IS - 8106
ER -