Ocean warming and acidification alter calcification and innate immune system gene expression in juvenile American lobsters, Homarus americanus.

Christine San Antonio, Helen Poynton, Keegan Krick, Robyn Hannigan
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Abstract

The Gulf of Maine, home to American lobster, Homarus americanus, is experiencing rapid ocean warming (OW) and acidification (OA) due to climate change. While some studies have investigated the effects of either ocean acidification (OA) or warming (OW) on lobsters, few explore the interaction of these stressors, particularly on gene expression. We evaluated the effects of OA and OW on early benthic juvenile lobster transcriptomics using RNA sequencing and RT-qPCR through two distinct aquarium experiments. Lobsters were reared under OW/OA conditions aligned with values predicted for 2100: decrease in pH by 0.3-0.4 units; mean sea surface warming of 2.89 °C. RNA was isolated from carapace hypodermal tissue in both experiments. The multi-stressor treatment in the RNAseq experiment had the greatest differential expression. Genes of interest pertaining to calcification and cuticle development were primarily downregulated under high temperature but upregulated under acidified and multi-stressor conditions. In the RT-qPCR experiment, crustin alone was significantly downregulated and only under the most extreme multi-stressor treatment. This gene along with the prophenoloxidase activating enzyme had expression that trended toward downregulation across all treatments, suggesting a possible correlation to immune suppression. Expression profiles for crustin and the calcification gene, carbonic anhydrase differed across treatments based on molt cycle timing, indicating that stressor impacts may vary depending on the molt cycle phase. Elevated temperature had a greater effect on the expression of calcification and cuticle development genes, though the direction of expression reversed with multiple stressors. These results indicate the impacts of OW and OA on early benthic juvenile lobsters are complex, possibly synergistic, vary with molt cycle, and potentially interfere with normal cuticle development, which may increase susceptibility to injury or disease.

海洋变暖和酸化改变了美洲小龙虾的钙化和先天免疫系统基因表达。
由于气候变化,美国龙虾Homarus americanus的家园缅因湾正在经历快速的海洋变暖和酸化。虽然一些研究已经调查了海洋酸化(OA)或变暖(OW)对龙虾的影响,但很少有人探索这些压力源的相互作用,特别是对基因表达的影响。我们通过两个不同的水族馆实验,利用RNA测序和RT-qPCR技术评估了OA和OW对早期底栖龙虾幼虾转录组学的影响。在OW/OA条件下饲养的龙虾与2100年的预测值一致:pH值降低0.3-0.4个单位;平均海面升温2.89°C。两个实验均从甲壳皮下组织中分离出RNA。RNAseq实验中多应激源处理差异表达量最大。与钙化和角质层发育有关的基因主要在高温下下调,但在酸化和多应激条件下上调。在RT-qPCR实验中,只有在最极端的多重应激源处理下,单独的壳蛋白才会被显著下调。该基因与酚氧化酶原活化酶的表达在所有治疗中都有下调的趋势,这表明可能与免疫抑制有关。皮壳蛋白、钙化基因、碳酸酐酶的表达谱根据蜕皮周期的时间不同而不同,表明应激源的影响可能因蜕皮周期的不同而不同。温度升高对钙化和角质层发育基因的表达影响较大,但在多种应激源下表达方向相反。这些结果表明,OW和OA对早期底栖幼虾的影响是复杂的,可能是协同的,随蜕皮周期的变化而变化,并可能干扰正常的角质层发育,从而增加对损伤或疾病的易感。
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