Thermotolerant coral–algal mutualisms maintain high rates of nutrient transfer while exposed to heat stress

Author:

Kemp Dustin W.1ORCID,Hoadley Kenneth D.2ORCID,Lewis Allison M.3ORCID,Wham Drew C.3,Smith Robin T.4,Warner Mark E.5ORCID,LaJeunesse Todd C.3ORCID

Affiliation:

1. Department of Biology, University of Alabama at Birmingham, AL, USA

2. Department of Biological Sciences, University of Alabama, AL, USA

3. Department of Biology, Pennsylvania State University, University Park, PA, USA

4. Center for Marine and Environmental Studies, University of the Virgin Islands, St. Thomas, VI, USA

5. School of Marine Science and Policy, University of Delaware, Lewes, DE, USA

Abstract

Symbiotic mutualisms are essential to ecosystems and numerous species across the tree of life. For reef-building corals, the benefits of their association with endosymbiotic dinoflagellates differ within and across taxa, and nutrient exchange between these partners is influenced by environmental conditions. Furthermore, it is widely assumed that corals associated with symbionts in the genus Durusdinium tolerate high thermal stress at the expense of lower nutrient exchange to support coral growth. We traced both inorganic carbon (H 13 CO 3 ) and nitrate ( 15 NO 3 ) uptake by divergent symbiont species and quantified nutrient transfer to the host coral under normal temperatures as well as in colonies exposed to high thermal stress. Colonies representative of diverse coral taxa associated with Durusdinium trenchii or Cladocopium spp. exhibited similar nutrient exchange under ambient conditions. By contrast, heat-exposed colonies with D. trenchii experienced less physiological stress than conspecifics with Cladocopium spp. while high carbon assimilation and nutrient transfer to the host was maintained. This discovery differs from the prevailing notion that these mutualisms inevitably suffer trade-offs in physiological performance. These findings emphasize that many host–symbiont combinations adapted to high-temperature equatorial environments are high-functioning mutualisms; and why their increased prevalence is likely to be important to the future productivity and stability of coral reef ecosystems.

Funder

National Science Foundation

Publisher

The Royal Society

Subject

General Agricultural and Biological Sciences,General Environmental Science,General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine

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