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首页> 外文期刊>Plant direct. >Red algal Rubisco fails to accumulate in transplastomic tobacco expressing Griffithsia?monilis RbcL and RbcS genes
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Red algal Rubisco fails to accumulate in transplastomic tobacco expressing Griffithsia?monilis RbcL and RbcS genes

机译:红藻Rubisco不能在表达Griffithsia?monilis RbcL和RbcS基因的转质体烟草中积聚

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Abstract In C3 plants, the carbon fixation step catalyzed by ribulose-1,5-bisphosphate carboxylase/oxygenase (Rubisco) represents a major rate-limiting step due to the competing oxygenation reaction, which leads to the energy-intensive photorespiration and lowers the overall photosynthetic efficiency. Hence, there is great biotechnological interest in replacing the Rubisco in C3 crops with a more efficient enzyme. The Rubisco enzymes from red algae are among the most attractive choices due to their remarkable preference for carboxylation over oxygenation reaction. However, the biogenesis of Rubisco is extremely complex. The Rubisco enzymes in plants, algae, and cyanobacteria are made up of eight large and eight small subunits. The folding of the large subunits and the assembly of the large subunits with the small subunits to form a functional holoenzyme require specific chaperonin complexes and assembly factors. As a result, previous success in expressing foreign Rubisco in plants has been limited to Rubisco large subunits from closely related plant species and simpler bacterial enzymes. In our previous work, we successfully replaced the Rubisco in tobacco with a cyanobacterial enzyme, which was able to support the phototrophic growth of the transgenic plants. In this work, we used the same approach to express the Rubisco subunits from the red alga Griffithsia monilis in tobacco chloroplasts in the absence of the tobacco Rubisco large subunit. Although the red algal Rubisco genes are being transcribed in tobacco chloroplasts, the transgenic plants lack functional Rubisco and can only grow in a medium containing sucrose. Our results suggest that co-expression of compatible chaperones will be necessary for successful assembly of red algal Rubisco in plants.
机译:摘要在C 3 植物中,核糖-1,5-双磷酸羧化酶/加氧酶(Rubisco)催化的固碳步骤是竞争性加氧反应的主要限速步骤,导致耗能的光呼吸,降低了整体光合作用效率。因此,用更有效的酶替代C 3 作物中的Rubisco具有很大的生物技术兴趣。来自红藻的Rubisco酶是最吸引人的选择之一,因为它们比羧化反应更倾向于羧基化。但是,Rubisco的生物发生极其复杂。植物,藻类和蓝细菌中的Rubisco酶由八个大亚基和八个小亚基组成。大亚基的折叠以及大亚基与小亚基的组装以形成功能性全酶,需要特定的伴侣蛋白复合物和组装因子。结果,以前在植物中表达外源Rubisco的成功仅限于来自密切相关的植物物种和更简单的细菌酶的Rubisco大亚基。在我们以前的工作中,我们成功地用蓝细菌酶替代了烟草中的Rubisco,该酶能够支持转基因植物的光养生长。在这项工作中,我们使用相同的方法在不存在烟草Rubisco大亚基的情况下,在烟草叶绿体中表达红藻Griffithsia monilis的Rubisco亚基。尽管红色藻类Rubisco基因正在烟草叶绿体中转录,但转基因植物缺乏功能性Rubisco,只能在含有蔗糖的培养基中生长。我们的结果表明,相容性分子伴侣的共表达对于植物中红藻Rubisco的成功组装将是必要的。

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