Skip to main content

Heritable variation drives rapid evolution of thermal performance curves in the protist Tetrahymena thermophila.

Publication ,  Journal Article
Liu, MH; Han, Z-Y; Yuan, Y; DeWitt, K; Wieczynski, DJ; Yammine, KM; Yammine, A; Zufall, RA; Siepielski, AM; Chalker, DL; Onishi, M; Gibert, JP ...
Published in: Communications biology
April 2026

Microbial respiration is a key biotic driver of climate change. Warming boosts microbial population growth, which increases biomass and respiration, potentially leading to more warming. This feedback might be disrupted by adaptation in thermal performance curves (TPCs) -whose shape describes how temperature drives growth. In this study, we uncover substantial genetic variation (G) in the intrinsic population growth rates (r) of the protist Tetrahymena thermophila, demonstrate a causal link between heritable variation in r and heritable variation in TPC shape, and show how this variation constrains predicted r-TPC shape evolution along specific evolutionary paths across temperatures. We also uncover Gene-by-Environment (G × E) variation in r, which results in specific signatures in TPC shape and predictable temperature-dependent TPC evolution that can erode heritable variation, thus reducing future evolutionary potential. Overall, we show how temperature-dependent evolution in microbial TPC shape-a linchpin of global ecosystem function-is determined by a combination of heritable and non-heritable variation in intrinsic growth rates.

Duke Scholars

Published In

Communications biology

DOI

EISSN

2399-3642

ISSN

2399-3642

Publication Date

April 2026

Related Subject Headings

  • 32 Biomedical and clinical sciences
  • 31 Biological sciences
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Liu, M. H., Han, Z.-Y., Yuan, Y., DeWitt, K., Wieczynski, D. J., Yammine, K. M., … Gibert, J. P. (2026). Heritable variation drives rapid evolution of thermal performance curves in the protist Tetrahymena thermophila. Communications Biology. https://doi.org/10.1038/s42003-026-09980-6
Liu, Megan H., Ze-Yi Han, Yaning Yuan, Katrina DeWitt, Daniel J. Wieczynski, Kathryn M. Yammine, Andrea Yammine, et al. “Heritable variation drives rapid evolution of thermal performance curves in the protist Tetrahymena thermophila.Communications Biology, April 2026. https://doi.org/10.1038/s42003-026-09980-6.
Liu MH, Han Z-Y, Yuan Y, DeWitt K, Wieczynski DJ, Yammine KM, et al. Heritable variation drives rapid evolution of thermal performance curves in the protist Tetrahymena thermophila. Communications biology. 2026 Apr;
Liu, Megan H., et al. “Heritable variation drives rapid evolution of thermal performance curves in the protist Tetrahymena thermophila.Communications Biology, Apr. 2026. Epmc, doi:10.1038/s42003-026-09980-6.
Liu MH, Han Z-Y, Yuan Y, DeWitt K, Wieczynski DJ, Yammine KM, Yammine A, Zufall RA, Siepielski AM, Chalker DL, Onishi M, Machado FA, Gibert JP. Heritable variation drives rapid evolution of thermal performance curves in the protist Tetrahymena thermophila. Communications biology. 2026 Apr;

Published In

Communications biology

DOI

EISSN

2399-3642

ISSN

2399-3642

Publication Date

April 2026

Related Subject Headings

  • 32 Biomedical and clinical sciences
  • 31 Biological sciences