Chen Taiyu, Zhu Xin-Guang, Lin Yongjun
National Key Laboratory of Crop Genetic Improvement, National Centre of Plant Gene Research, Huazhong Agricultural University, Wuhan, 430070, China.
Plant Mol Biol. 2014 Sep;86(1-2):93-110. doi: 10.1007/s11103-014-0215-8. Epub 2014 Jul 10.
Engineering C4 photosynthetic metabolism into C3 crops is regarded as a major strategy to increase crop productivity, and clarification of the evolutionary processes of C4 photosynthesis can help the better use of this strategy. Here, Eleocharis baldwinii, a species in which C4 photosynthesis can be induced from a C3-C4 state under either environmental or ABA treatments, was used to identify the major transcriptional modifications during the process from C3-C4 to C4. The transcriptomic comparison suggested that in addition to the major differences in C4 core pathway, the pathways of glycolysis, citrate acid metabolism and protein synthesis were dramatically modified during the inducement of C4 photosynthetic states. Transcripts of many transporters, including not only metabolite transporters but also ion transporters, were dramatically increased in C4 photosynthetic state. Many candidate regulatory genes with unidentified functions were differentially expressed in C3-C4 and C4 photosynthetic states. Finally, it was indicated that ABA, auxin signaling and DNA methylation play critical roles in the regulation of C4 photosynthesis. In summary, by studying the different photosynthetic states of the same species, this work provides the major transcriptional differences between C3-C4 and C4 photosynthesis, and many of the transcriptional differences are potentially related to C4 development and therefore are the potential targets for reverse genetics studies.
将C4光合代谢工程引入C3作物被视为提高作物生产力的一项主要策略,阐明C4光合作用的进化过程有助于更好地利用这一策略。在这里,使用在环境或脱落酸(ABA)处理下可从C3-C4状态诱导出C4光合作用的物种鲍德温荸荠,来鉴定从C3-C4到C4过程中的主要转录修饰。转录组比较表明,除了C4核心途径的主要差异外,在C4光合状态诱导过程中,糖酵解、柠檬酸代谢和蛋白质合成途径也发生了显著改变。许多转运蛋白的转录本,不仅包括代谢物转运蛋白,还包括离子转运蛋白,在C4光合状态下显著增加。许多功能未知的候选调控基因在C3-C4和C4光合状态下差异表达。最后,表明ABA、生长素信号传导和DNA甲基化在C4光合作用的调控中起关键作用。总之,通过研究同一物种的不同光合状态,这项工作提供了C3-C4和C4光合作用之间的主要转录差异,许多转录差异可能与C4发育有关,因此是反向遗传学研究的潜在目标。