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Oakley, C. A.

Publications and source records attributed to Oakley, C. A..

3 recordsLinked to original sources

Lipid nanoparticle supplementation enhances host metabolism in a model symbiotic cnidarian

Stable cnidarian-dinoflagellate symbiosis provides the trophic foundation of coral reef ecosystems. Understanding nutrient exchange underpinning this symbiosis grows increasingly urgent as reefs face accelerating threats from climate change, and the need for time-critical interventions to improve coral health via aquaculture. Lipid nanoparticles (LNPs), widely used as delivery vehicles in biomedical science, are emerging as a promising tool to supplement coral nutrition. However, physiological impacts of LNPs on cnidarians, including uptake, nutritional value, and holobiont response, remain largely unexplored. Here, we delivered empty, phosphatidylcholine LNPs to both symbiotic and aposymbiotic Exaiptasia diaphana, an anemone model for corals, and analyzed the host proteomic response via mass spectrometry. LNP supplementation elicited broad proteome shifts, with notable overlap between symbiosis- and LNP-induced protein expression. Proteins involved in lipid catabolism, lipid transport, {beta}-oxidation, lysosomal function, and protein translation were significantly more abundant, consistent with enhanced lipid processing and metabolic activity. LNP supplementation, like symbiosis, suppressed both asexual reproduction and the expression of a suite of predation- and digestion-associated venom proteins and proteases, suggesting a conserved "sated" phenotype in response to lipid supply. Variations in feeding frequency with Artemia had minimal impact, indicating that LNPs can be a robust supplement irrespective of primary feeding regime. These data demonstrate that adult Exaiptasia are capable of direct uptake of LNPs, offering a tool for probing lipid metabolism, signaling and symbiotic function in cnidarians. Moreover, the ability to manipulate host physiology using defined lipid formulations holds significant potential for advancing coral aquaculture stress resilience, including reef restoration strategies.

zoology↗

Octadecanoids as emerging lipid mediators in cnidarian-dinoflagellate symbiosis

Oxylipin signaling has been suggested as a potential mechanism for the inter-partner recognition and homeostasis regulation of cnidarian-dinoflagellate symbiosis, which maintains the ecological viability of coral reefs. Here we assessed the effects of symbiosis and symbiont identity on a model cnidarian, the sea anemone Exaiptasia diaphana, using mass spectrometry to quantify octadecanoid oxylipins (i.e., 18-carbon-derived oxygenated fatty acids). A total of 84 octadecanoids were reported, and distinct stereospecificity was observed for the synthesis of R- and S-enantiomers for symbiont-free anemones and free-living cultured dinoflagellate symbionts, respectively. Symbiont-derived 13(S)-hydroxy-octadecatetraenoic acid (13(S)- HOTE) linked to a 13S-lipoxygnase was translocated to the host anemone with a 32-fold increase, suggesting it as a biomarker of symbiosis and as a potential agonist of host receptors that regulate inflammatory transcription. Only symbiosis with the native symbiont Breviolum minutum decreased the abundance of pro-inflammatory 9(R)-hydroxy-octadecadienoic acid (9(R)-HODE) in the host. In contrast, symbiosis with the non-native symbiont Durusdinium trenchii was marked by higher abundance of autoxidation-derived octadecanoids, corroborating previous evidence for cellular stress in this association. The putative octadecanoid signaling pathways reported here suggest foundational knowledge gaps that can support the bioengineering and selective breeding of more optimal host-symbiont pairings to enhance resilience and survival of coral reefs.

biochemistry↗

A novel menthol-DCMU bleaching method for foraminifera: Generating aposymbiotic hosts for symbiosis research

Predicting the response and resilience of coral reefs to climate change can be achieved through better understanding the cellular symbiosis between coral reef holobionts and their associated endosymbiotic algae. Larger benthic foraminifera (LBF) are key calcium carbonate producers, of which two species were investigated for their suitability for menthol bleaching. The LBF Amphistegina lobifera, hosting diatoms, and Sorites orbiculus, hosting dinoflagellates of the family Symbiodiniaceae. This study aimed to rapidly generate symbiont-free (aposymbiotic) hosts via treatment with menthol and DCMU. The first experiment, Menthol Concentration Comparison (MCC), aimed to find a non-lethal and effective dose for both species. The second experiment, Menthol-bleaching Ecophysiology Assessment (MEA), used a larger sample size of both species to test the response to one concentration 0.19 mmol L-1 and measured growth, motility (an indicator for overall fitness) and mortality over a 4-week time frame. Menthol led to an aposymbiotic state in 100% of A. lobifera and only minimally impacted its motility and mortality. The method was effective for S. orbiculus, where an aposymbiotic state, defined as no visible remains of symbiont cells inside the host at the end of the experimental period, occurred in 66% of specimens of the MCC experiment. Growth was strongly impacted by the bleaching protocol in both species, allowing no new calcite to be formed during the acute exposure. This method can be applied for testing aspects of symbiosis establishment in LBF as well as their potential to take up different symbionts in a short-to medium time frame.

cell biology↗