Disparate patterns of genetic divergence in three widespread corals across a pan-Pacific environmental gradient highlights species-specific adaptation trajectories.
Hume, B. C.; Voolstra, C. R.; Armstrong, E.; Mitushasi, G.; Porro, B.; Oury, N.; Agostini, S.; Boissin, E.; Poulain, J.; Carradec, Q.; Paz-Garcia, D. A.; Zoccola, D.; Magalon, H.; Moulin, C.; Bourdin, G.; Iwankow, G.; Romac, S.; Banaigs, B.; Boss, E.; Bowler, C.; de Vargas, C.; Douville, E.; Flores, M.; Furla, P.; Galand, P.; Gilson, E.; Lombard, F.; Pesant, S.; Reynaud, S.; Sullivan, M. B.; Shinichi, S.; Thomas, O.; Trouble, R.; Vega Thurber, R.; Wincker, P.; Planes, S.; Allemand, D.; Forcioli, D.
10.1101/2022.10.13.512013 bioRxivShow abstract
Tropical coral reefs are among the worst affected ecosystems by climate change with predictions ranging between a 70-90% loss of reefs in the coming decades. Effective conservation strategies that maximize ecosystem resilience, and potential for recovery, must be informed by the accurate characterization of extant genetic diversity and population structure together with an understanding of the adaptive potential of keystone species. Here, we analyzed samples from the Tara Pacific Expedition (2016 to 2018) that completed an 18,000 km longitudinal transect of the Pacific Ocean sampling three widespread corals - Pocillopora meandrina, Porites lobata, and Millepora cf. platyphylla - across 33 sites from 11 islands. Using deep metagenomic sequencing of 269 colonies in conjunction with morphological analyses and climate variability data we can show that the sampled transect encompasses multiple morphologically cryptic species that exhibit disparate biogeographic patterns, and most importantly, distinct evolutionary patterns, despite exposure to identical environmental regimes. Our findings demonstrate on a basin-scale that evolutionary trajectories are species-specific and complex, and can only in part be predicted from the environment. This highlights that conservation strategies must integrate multi-species investigations to consider the distinct genomic footprints shaped by selection as well as the genetic potential for adaptive change.
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