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南极海胆胚胎和幼虫发育过程中蛋白质合成的成本与能量分配

Cost of protein synthesis and energy allocation during development of antarctic sea urchin embryos and larvae.

作者信息

Pace Douglas A, Manahan Donal T

机构信息

Department of Biological Sciences, University of Southern California, Los Angeles, CA 90089-0371, USA.

出版信息

Biol Bull. 2007 Apr;212(2):115-29. doi: 10.2307/25066589.

Abstract

Cold environments represent a substantial volume of the biosphere. To study developmental physiology in subzero seawater temperatures typically found in the Southern Ocean, rates and costs of protein synthesis were measured in embryos and larvae of Sterechinus neumayeri, the Antarctic sea urchin. Our analysis of the "cost of living" in extreme cold for this species shows (1) that cost of protein synthesis is strikingly low during development, at 0.41 +/- 0.05 J (mg protein synthesized)(-1) (n = 16); (2) that synthesis cost is fixed and independent of synthesis rate; and (3) that a low synthesis cost permits high rates of protein turnover at -1 degrees C, at rates comparable to those of temperate species of sea urchin embryos developing at 15 degrees C. With a low synthesis cost, even at the highest synthesis rates measured (gastrulae), the proportion of total metabolism accounted for by protein synthesis in the Antarctic sea urchin was 54%-a value similar to that of temperate sea urchin embryos. In the Antarctic sea urchin, up to 87% of metabolic rate can be accounted for by the combined energy costs of protein synthesis and the sodium pump. We conclude that, in Antarctic sea urchin embryos, high rates of protein synthesis can be supported in extreme-cold environments while still maintaining low rates of respiration.

摘要

寒冷环境占据了生物圈的很大一部分。为了研究在南大洋常见的零下海水温度下的发育生理学,我们测量了南极海胆纽氏刻肋海胆胚胎和幼虫的蛋白质合成速率及成本。我们对该物种在极端寒冷环境下“生活成本”的分析表明:(1)在发育过程中,蛋白质合成成本极低,为0.41±0.05焦耳/(毫克合成蛋白质)(-1)(n = 16);(2)合成成本固定,与合成速率无关;(3)低合成成本使得在-1℃时蛋白质周转率很高,与在15℃发育的温带海胆胚胎相当。由于合成成本低,即使在测量到的最高合成速率(原肠胚)下,南极海胆蛋白质合成占总代谢的比例为54%,这一数值与温带海胆胚胎相似。在南极海胆中,高达87%的代谢率可由蛋白质合成和钠泵的能量成本共同解释。我们得出结论,在南极海胆胚胎中,极端寒冷环境下可以支持高蛋白质合成速率,同时仍保持低呼吸速率。

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