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Cai, J. B.

Publications and source records attributed to Cai, J. B..

2 recordsLinked to original sources

Thermal pre-treatment of algal symbiont species differentially affects coral development

The foundation of coral reef ecosystems centered around the nutritional relationship between corals and intracellular algal symbionts. Although these symbioses are highly obligate for coral hosts, many partnerships are re-established anew with each coral generation. Furthermore, climate change destabilizes the symbiosis, and the cellular mechanisms underlying successful symbiont colonization of hosts and host development, and how they are affected by thermal stress are poorly understood. Here, we explored the effect of algal species and thermal treatments on symbiont and host cell proliferation by offering Acropora tenuis larvae one of four algal species pre-exposed to elevated or ambient temperature. In addition, we characterized the cell-surface glycome of each species-temperature combination to understand its role in symbiont recognition and proliferation. We found that thermal pre-treatment negatively affected algal photosynthetic efficiency and initial symbiont density in hosts, but did not affect symbiont colonization rate or cell proliferation. In contrast, host cell proliferation was affected in a species-specific manner. Thermal pre-treatment of B. minutum and D. trenchii negatively affected host cell proliferation compared to control symbionts, whereas thermal treatment of S. microadriaticum did not affect developmental outcomes. Further, uptake of thermally pre-treated D. trenchii decreased host cell proliferation below that of larvae not offered any symbionts, indicating that this relationship is costly to host development despite the high thermal tolerance of this species. Algal surface glycan composition varied across species but not by thermal pre-treatment, suggesting reductions in density of thermally pre-treated algae may be due to changes in physiology rather than altered surface chemistry. Further, variation in glycan abundance across species did not track differences in colonization rate or symbiont density, hinting towards a smaller role of glycans in host-symbiont specificity.

cell biology↗

Aiptasia oral regeneration is host-controlled but supported by symbiont-derived photosynthates

The study of oral regeneration in the sea anemone Exaiptasia diaphana (commonly called Aiptasia) - a prominent model for the study of coral-algal symbiosis - offers the unique opportunity to investigate the role of symbionts in regeneration. Algal symbionts have the potential to affect healing and regeneration by supplementing host nutrition and/or modulating host immune responses. Here we revisited the descriptions of Aiptasia oral regeneration from the 1970s with modern imaging techniques. Upon oral amputation, the anemones progressed through six distinct and repeatable stages of wound healing and regeneration, a process that was completed within a week. We followed regeneration in symbiotic anemones (i.e., associated with native dinoflagellate symbionts) in comparison to aposymbiotic anemones (i.e., lacking algae), and symbiotic anemones kept in the dark (i.e., blocking photosynthesis). In most symbiotic anemones under normal light, tentacle buds appeared within 32 hours post-amputation, whereas in aposymbiotic anemones and symbiotic anemones kept in the dark buds appeared 12 hours later. This pattern suggests that the contribution of symbiont-derived photosynthates to host nutrition shortened regeneration time. Our study provides the basis for further research on the underlying molecular processes in Aiptasia oral regeneration, for comparative studies of different symbiotic cnidarians and for investigating the relative role of host and symbionts in different developmental processes such as whole-body morphogenesis during asexual reproduction.

zoology↗