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叶绿体转化在光合作用工程中的应用。

Chloroplast transformation for engineering of photosynthesis.

机构信息

Department of Molecular Biology and Genetics, Cornell University, Ithaca, NY 14853, USA.

出版信息

J Exp Bot. 2013 Jan;64(3):731-42. doi: 10.1093/jxb/ers325. Epub 2012 Nov 16.

Abstract

Many efforts are underway to engineer improvements in photosynthesis to meet the challenges of increasing demands for food and fuel in rapidly changing environmental conditions. Various transgenes have been introduced into either the nuclear or plastid genomes in attempts to increase photosynthetic efficiency. We examine the current knowledge of the critical features that affect levels of expression of plastid transgenes and protein accumulation in transplastomic plants, such as promoters, 5' and 3' untranslated regions, RNA-processing sites, translation signals and amino acid sequences that affect protein turnover. We review the prior attempts to manipulate the properties of ribulose-1,5-bisphosphate carboxylase oxygenase (Rubisco) through plastid transformation. We illustrate how plastid operons could be created for expression of the multiple genes needed to introduce new pathways or enzymes to enhance photosynthetic rates or reduce photorespiration. We describe here the past accomplishments and future prospects for manipulating plant enzymes and pathways to enhance carbon assimilation through plastid transformation.

摘要

许多努力正在进行中,以改进光合作用,以应对在快速变化的环境条件下不断增长的食物和燃料需求的挑战。各种转基因已被引入核或质体基因组中,试图提高光合作用效率。我们检查了目前关于影响质体转基因表达水平和蛋白积累的关键特征的知识,例如启动子、5'和 3'非翻译区、RNA 加工位点、翻译信号和影响蛋白周转的氨基酸序列。我们回顾了通过质体转化操纵核酮糖 1,5-二磷酸羧化酶加氧酶(Rubisco)特性的先前尝试。我们说明了如何创建质体操纵子,以表达引入新途径或酶所需的多个基因,以提高光合速率或减少光呼吸。我们在这里描述了通过质体转化操纵植物酶和途径来增强碳同化的过去成就和未来前景。

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