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红光处理暗培养的玉米幼苗可激活 80S 核糖体。

Activation of 80S Maize Ribosomes by Red Light Treatment of Dark-grown Seedlings.

机构信息

Department of Botany, University of Georgia, Athens, Georgia 30602.

出版信息

Plant Physiol. 1974 Jan;53(1):28-31. doi: 10.1104/pp.53.1.28.

Abstract

The in vitro protein synthetic activity of 80S ribosomes from leaves of dark-grown corn seedlings was enhanced (at low Mg(2+) levels) by a 5-minute red light treatment applied 2 hours prior to tissue harvest. The effect was completely reversed by an immediate brief far red treatment, suggesting that ribosome activation is controlled by the phytochrome system. Experiments in which the interval between light treatment and tissue harvest was shortened indicate that the response was quite rapid. The initial increase in activity was detected within 30 minutes, followed by a rapid increase during the next 1.5 hours. No further increase occurred after 2 to 3 hours.The change in ribosome activity relates, at least in part, to an increase in the level of peptidyl-tRNA associated with ribosomes. Removal of peptidyl-tRNA from light-treated ribosomes also completely reversed the red light effect. Activation of ribosomes by 2 to 3 hours continuous white light (as previously reported) differs from red light activation in that reversal of this response requires salt washing of the ribosomes in addition to removal of peptidyl-tRNA.

摘要

黑暗中生长的玉米幼苗叶片 80S 核糖体的体外蛋白合成活性在低镁离子浓度下,在组织收获前 2 小时接受 5 分钟的红光处理后增强。立即进行短暂的远红光处理完全逆转了该效应,这表明核糖体的激活受光敏色素系统控制。缩短光处理与组织收获之间的间隔的实验表明,该反应非常迅速。在 30 分钟内检测到活性的初始增加,随后在接下来的 1.5 小时内迅速增加。2 至 3 小时后不再增加。核糖体活性的变化至少部分与与核糖体结合的肽酰-tRNA 水平的增加有关。从光处理的核糖体中去除肽酰-tRNA 也完全逆转了红光效应。正如之前报道的那样,2 至 3 小时连续白光对核糖体的激活与红光激活不同,因为这种反应的逆转除了去除肽酰-tRNA 外,还需要用盐洗涤核糖体。

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Ribosome changes following illumination of dark-grown plants.黑暗生长的植物光照后核糖体的变化。
Biochim Biophys Acta. 1968 Jan 29;155(1):183-92. doi: 10.1016/0005-2787(68)90348-1.

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