Norwegian Polar Institute, Fram Centre, 9296, tromsö, Norway.
Department of Aquatic Resources, Institute of Marine Research, Swedish University of Agricultural Sciences, Turistgatan 5, 45330, Lysekil, Sweden.
Sci Rep. 2022 Dec 23;12(1):22223. doi: 10.1038/s41598-022-26480-9.
Using a targeted metabolomic approach we investigated the effects of low seawater pH on energy metabolism in two late copepodite stages (CIV and CV) of the keystone Arctic copepod species Calanus glacialis. Exposure to decreasing seawater pH (from 8.0 to 7.0) caused increased ATP, ADP and NAD and decreased AMP concentrations in stage CIV, and increased ATP and phospho-L-arginine and decreased AMP concentrations in stage CV. Metabolic pathway enrichment analysis showed enrichment of the TCA cycle and a range of amino acid metabolic pathways in both stages. Concentrations of lactate, malate, fumarate and alpha-ketoglutarate (all involved in the TCA cycle) increased in stage CIV, whereas only alpha-ketoglutarate increased in stage CV. Based on the pattern of concentration changes in glucose, pyruvate, TCA cycle metabolites, and free amino acids, we hypothesise that ocean acidification will lead to a shift in energy production from carbohydrate metabolism in the glycolysis toward amino acid metabolism in the TCA cycle and oxidative phosphorylation in stage CIV. In stage CV, concentrations of most of the analysed free fatty acids increased, suggesting in particular that ocean acidification increases the metabolism of stored wax esters in this stage. Moreover, aminoacyl-tRNA biosynthesis was enriched in both stages indicating increased enzyme production to handle low pH stress.
我们采用靶向代谢组学方法研究了低海水 pH 值对北极关键桡足类物种北极磷虾两个晚期幼体阶段(CIV 和 CV)能量代谢的影响。暴露于海水 pH 值降低(从 8.0 降至 7.0)导致 CIV 期 ATP、ADP 和 NAD 浓度增加,AMP 浓度降低,CV 期 ATP 和磷酸-L-精氨酸浓度增加,AMP 浓度降低。代谢途径富集分析表明,两个阶段均富集三羧酸 (TCA) 循环和一系列氨基酸代谢途径。CIV 期乳酸盐、苹果酸盐、延胡索酸盐和α-酮戊二酸(均参与 TCA 循环)浓度增加,而 CV 期仅α-酮戊二酸浓度增加。基于葡萄糖、丙酮酸、TCA 循环代谢物和游离氨基酸浓度的变化模式,我们假设海洋酸化将导致能量产生从 CIV 期糖酵解中的碳水化合物代谢向 TCA 循环和氧化磷酸化中的氨基酸代谢转移。在 CV 期,大多数分析的游离脂肪酸浓度增加,这表明海洋酸化特别增加了该阶段储存的蜡酯的代谢。此外,两个阶段均富集了氨酰-tRNA 生物合成,表明为了应对低 pH 值应激增加了酶的产生。