Performance of Orbicella faveolata larval cohorts does not align with previously observed thermal tolerance of adult source populations

Author:

Zhang Yingqi1ORCID,Gantt Shelby E.2ORCID,Keister Elise F.2,Elder Holland1ORCID,Kolodziej Graham34,Aguilar Catalina34,Studivan Michael S.34,Williams Dana E.5ORCID,Kemp Dustin W.2,Manzello Derek P.6ORCID,Enochs Ian C.4,Kenkel Carly D.1ORCID

Affiliation:

1. Department of Biological Sciences University of Southern California Los Angeles California USA

2. Department of Biology University of Alabama at Birmingham Birmingham Alabama USA

3. University of Miami, Cooperative Institute for Marine and Atmospheric Studies Miami Florida USA

4. Ocean Chemistry and Ecosystems Division, NOAA Atlantic Oceanographic and Meteorological Laboratory Miami Florida USA

5. Population and Ecosystem Monitoring Division, NOAA Southeast Fisheries Science Center Miami Florida USA

6. Coral Reef Watch, Satellite Oceanography and Climatology Division, Center for Satellite Applications and Research, U.S. National Oceanic and Atmospheric Administration College Park Maryland USA

Abstract

AbstractOrbicella faveolata, commonly known as the mountainous star coral, is a dominant reef‐building species in the Caribbean, but populations have suffered sharp declines since the 1980s due to repeated bleaching and disease‐driven mortality. Prior research has shown that inshore adult O. faveolata populations in the Florida Keys are able to maintain high coral cover and recover from bleaching faster than their offshore counterparts. However, whether this origin‐specific variation in thermal resistance is heritable remains unclear. To address this knowledge gap, we produced purebred and hybrid larval crosses from O. faveolata gametes collected at two distinct reefs in the Upper Florida Keys, a nearshore site (Cheeca Rocks, CR) and an offshore site (Horseshoe Reef, HR), in two different years (2019, 2021). We then subjected these aposymbiotic larvae to severe (36°C) and moderate (32°C) heat challenges to quantify their thermal tolerance. Contrary to our expectation based on patterns of adult thermal tolerance, HR purebred larvae survived better and exhibited gene expression profiles that were less driven by stress response under elevated temperature compared to purebred CR and hybrid larvae. One potential explanation could be the compromised reproductive output of CR adult colonies due to repeated summer bleaching events in 2018 and 2019, as gametes originating from CR in 2019 contained less storage lipids than those from HR. These findings provide an important counter‐example to the current selective breeding paradigm, that more tolerant parents will yield more tolerant offspring, and highlight the importance of adopting a holistic approach when evaluating larval quality for conservation and restoration purposes.

Funder

National Oceanic and Atmospheric Administration

University of Southern California

Publisher

Wiley

Subject

General Environmental Science,Ecology,Environmental Chemistry,Global and Planetary Change

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