Towards assembling functional cyanobacterial β-carboxysomes in Oryza sativa chloroplasts

IF 3.9 4区 生物学 Q1 GENETICS & HEREDITY
Gurbir Kaur Sidhu, Rakesh Pandey, Gurdeep Kaur, Anjulata Singh, Sangram K. Lenka, Pallavolu M. Reddy
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引用次数: 0

Abstract

The major limiting factor of photosynthesis in C3 plants is the enzyme, rubisco which inadequately distinguishes between carbon dioxide and oxygen. To overcome catalytic deficiencies of Rubisco, cyanobacteria utilize advanced protein microcompartments, called the carboxysomes which envelopes the enzymes, Rubisco and Carbonic Anhydrase (CA). These microcompartments facilitate the diffusion of bicarbonate ions which are converted to CO2 by CA, following in an increase in carbon flux near Rubisco boosting CO2 fixation process. Inspired by this mechanism, our study aims to improve photosynthetic efficiency in the C3 model crop, rice (Oryza sativa), by stably engineering the genetic components of the β-carboxysome of Synechococcus elongatus PCC 7942 (hereafter, Syn7942) in the rice genome. We demonstrated this proof of concept by developing two types of transgenic rice plants. The first type involved targeting the chloroplasts with three key carboxysome structural proteins (ccmL, ccmO, and ccmK) and a chimeric protein (ccmC), which integrates domains from four distinct carboxysome proteins. The second type combined these proteins with the introduction of cyanobacterial Rubisco targeted to chloroplasts. Additionally, in the second transgenic background, RNA interference was employed to silence the endogenous rice Rubisco along with stromal carbonic anhydrase gene. The transgenic plants exhibited the assembly of carboxysome-like compartments and aggregated proteins in the chloroplasts and the second type demonstrated reduced plant growth and yield. We have followed a bottom-up approach for targeting the cyanobacterial CCM in rice chloroplast which would help in stacking up the components further required for increasing the photosynthetic efficiency in future.

在水稻叶绿体中组装功能蓝藻β-羧酸体的研究
C3植物光合作用的主要限制因素是rubisco酶,它不能充分区分二氧化碳和氧气。为了克服Rubisco的催化缺陷,蓝藻利用先进的蛋白质微室,称为羧酸体,它包裹着酶,Rubisco和碳酸酐酶(CA)。这些微室促进碳酸氢盐离子的扩散,碳酸氢盐离子被CA转化为二氧化碳,随后Rubisco附近碳通量的增加促进了二氧化碳的固定过程。受这一机制的启发,我们的研究旨在通过稳定地改造水稻长聚球菌(Synechococcus elongatus) PCC 7942(以下简称Syn7942)基因组中β-羧基体的遗传成分,提高C3模式作物水稻(Oryza sativa)的光合效率。我们通过开发两种转基因水稻来证明这一概念。第一种类型涉及用三个关键的羧基体结构蛋白(ccmL, ccmO和ccmK)和一个嵌合蛋白(ccmC)靶向叶绿体,该蛋白整合了四个不同的羧基体蛋白的结构域。第二种类型将这些蛋白质与针对叶绿体的蓝细菌Rubisco的引入结合起来。此外,在第二种转基因背景下,采用RNA干扰法沉默水稻内源Rubisco和基质碳酸酐酶基因。转基因植株在叶绿体中表现出羧基体样区室和聚集蛋白的聚集,第二种转基因植株表现出生长和产量的降低。我们采用了一种自下而上的方法来定位水稻叶绿体中的蓝藻CCM,这将有助于进一步积累提高光合效率所需的成分。
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来源期刊
CiteScore
3.50
自引率
3.40%
发文量
92
审稿时长
2 months
期刊介绍: Functional & Integrative Genomics is devoted to large-scale studies of genomes and their functions, including systems analyses of biological processes. The journal will provide the research community an integrated platform where researchers can share, review and discuss their findings on important biological questions that will ultimately enable us to answer the fundamental question: How do genomes work?
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