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Rubisco 工程通过质体转化及表达评估方案。

Rubisco Engineering by Plastid Transformation and Protocols for Assessing Expression.

机构信息

Plant Sciences, Research School of Biology, College of Science, The Australian National University, Acton, ACT, Australia.

出版信息

Methods Mol Biol. 2021;2317:195-214. doi: 10.1007/978-1-0716-1472-3_10.

Abstract

The assimilation of CO within chloroplasts is catalyzed by the bifunctional enzyme ribulose-1,5-bisphosphate carboxylase/oxygenase, Rubisco. Within higher plants the Rubisco large subunit gene, rbcL, is encoded in the plastid genome, while the Rubisco small subunit gene, RbcS is coded in the nucleus by a multigene family. Rubisco is considered a poor catalyst due to its slow turnover rate and its additional fixation of O that can result in wasteful loss of carbon through the energy requiring photorespiratory cycle. Improving the carboxylation efficiency and CO/O selectivity of Rubisco within higher plants has been a long term goal which has been greatly advanced in recent times using plastid transformation techniques. Here we present experimental methodologies for efficiently engineering Rubisco in the plastids of a tobacco master line and analyzing leaf Rubisco content.

摘要

叶绿体中 CO 的同化是由双功能酶核酮糖-1,5-二磷酸羧化酶/加氧酶(Rubisco)催化的。在高等植物中,Rubisco 大亚基基因 rbcL 编码在质体基因组中,而 Rubisco 小亚基基因 RbcS 则由核中的多基因家族编码。Rubisco 被认为是一种较差的催化剂,因为它的周转率较慢,并且它额外固定的 O 会导致通过耗能的光呼吸循环浪费碳的损失。提高高等植物中 Rubisco 的羧化效率和 CO/O 选择性一直是一个长期目标,近年来,利用质体转化技术,这一目标得到了极大的推进。在这里,我们提出了在烟草主系质体中有效工程化 Rubisco 并分析叶片 Rubisco 含量的实验方法。

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