Distinct modes of holobiont specialization among cryptic coral lineages
Grupstra, C. G. B.; Meyer-Kaiser, K. S.; Bennett, M.-J.; Andres, M. O.; Juszkiewicz, D. J.; Fifer, J. E.; Da-Anoy, J. P.; Gomez-Campo, K.; Martinez-Rugerio, I.; Aichelman, H. E.; Huzar, A. K.; Hughes, A. M.; Rivera, H. E.; Davies, S. W.
Show abstract
As ocean warming threatens reefs worldwide, identifying corals with adaptations to higher temperatures is critical for conservation. Genetically distinct but morphologically similar (i.e., cryptic) coral populations can be specialized to extreme habitats and thrive under stressful conditions. These corals often associate with locally beneficial microbiota (Symbiodiniaceae photobionts and bacteria), clouding interpretation of the drivers of thermal tolerance. Here, we leverage a holobiont (massive Porites) with high host-partner fidelity to investigate adaptive variation across classic ("typical" conditions) and extreme reefs characterized by higher temperatures and light attenuation. We uncovered three cryptic lineages that exhibit limited micro-morphological variation; one lineage dominated classic reefs (L1), one had more even distributions (L2), and a third was restricted to extreme reefs (L3). Two lineages were more closely related to populations [~]4300 km away, suggesting that these lineages are widespread. All corals harbored Cladocopium C15 photobionts, but strain-level compositions differed among lineages and reef types. L1 associated with distinct photobionts and bacteria in each reef type, whereas L2 had relatively stable associations. L3 hosted unique photobiont strains, signaling high host-photobiont fidelity. Analysis of light harvesting capacity and thermal tolerance revealed key adaptive variation underpinning survival in distinct habitats. L1 had the highest light absorption efficiency and lowest thermal tolerance, suggesting it is a classic reef specialist. L3 had the lowest light absorption efficiency and the highest thermal tolerance, showing that it is an extreme reef specialist. L2 had intermediate light absorption efficiency and thermal tolerance, signaling habitat generalism, potentially explaining how it survives well in both habitat types. These findings reveal diverging holobiont strategies to cope with extreme conditions. Resolving coral lineages is key to understanding variation in thermal tolerance among coral populations; uncovering thermally-tolerant holobionts can strengthen our understanding of coral evolution and symbiosis, and support global conservation and restoration efforts.
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