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首页> 外文期刊>The Biological Bulletin >Metabolic Cost of Protein Synthesis in Larvae of the Pacific Oyster (Crassostrea gigas) Is Fixed Across Genotype, Phenotype, and Environmental Temperature
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Metabolic Cost of Protein Synthesis in Larvae of the Pacific Oyster (Crassostrea gigas) Is Fixed Across Genotype, Phenotype, and Environmental Temperature

机译:跨基因型,表型和环境温度固定在太平洋牡蛎(Crassostrea gigas)的幼虫中蛋白质合成的代谢成本。

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摘要

The energy made available through catabolism of specific biochemical reserves is constant using standard thermodynamic conversion equivalents (e.g., 24.0 J mg protein(-1)). In contrast, measurements reported for the energy cost of synthesis of specific biochemical constituents are highly variable. In this study, we measured the metabolic cost of protein synthesis and determined whether this cost was influenced by genotype, phenotype, or environment. We focused on larval stages of the Pacific oyster Crassostrea gigas, a species that offers several experimental advantages: availability of genetically pedigreed lines, manipulation of ploidy, and tractability of larval forms for in vivo studies of physiological processes. The cost of protein synthesis was measured in larvae of C. gigas for 1) multiple genotypes, 2) phenotypes with different growth rates, and 3) different environmental temperatures. For all treatments, the cost of protein synthesis was within a narrow range-near the theoretical minimum-with a fixed cost (mean +/- one standard error, n = 21) of 2.1 +/- 0.2 J (mg protein synthesized)(-1). We conclude that there is no genetic variation in the metabolic cost of protein synthesis, thereby simplifying bioenergetic models. Protein synthesis is a major component of larval metabolism in C. gigas, accounting for more than half the metabolic rate in diploid (59%) and triploid larvae (54%). These results provide measurements of metabolic cost of protein synthesis in larvae of C. gigas, an indicator species for impacts of ocean change, and provide a quantitative basis for evaluating the cost of resilience.
机译:使用标准的热力学转化当量(例如24.0 J mg蛋白质(-1)),通过特定生化储备的分解代谢提供的能量是恒定的。相反,报告的合成特定生化成分的能量成本的测量结果高度可变。在这项研究中,我们测量了蛋白质合成的代谢成本,并确定了该成本是否受到基因型,表型或环境的影响。我们的研究重点是太平洋牡蛎Crassostrea gigas的幼体阶段,该种具有若干实验优势:遗传学系的可用性,倍性的操纵以及幼体形式的可延展性,可用于体内生理过程的研究。蛋白质合成的成本是在C. gigas的幼虫中测量的:1)多种基因型,2)具有不同生长速率的表型和3)不同的环境温度。对于所有治疗,蛋白质合成的成本都在狭窄的范围内-接近理论最小值-具有2.1 +/- 0.2 J的固定成本(平均+/-一个标准误差,n = 21)(毫克蛋白质合成)( -1)。我们得出结论,蛋白质合成代谢成本没有遗传变异,从而简化了生物能模型。蛋白质合成是长形梭菌幼虫代谢的主要组成部分,占二倍体(59%)和三倍体幼虫(54%)的代谢率的一半以上。这些结果提供了对C. gigas幼虫中蛋白质合成代谢成本的测量,C。gigas幼虫是海洋变化影响的指示物种,并为评估复原力成本提供了定量基础。

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