Srivastava Rakesh, Rai Krishan Mohan, Pandey Bindu, Singh Sudhir P, Sawant Samir V
Plant Molecular Biology & Genetic Engineering Laboratory, Council of Scientific and Industrial Research, National Botanical Research Institute (CSIR-NBRI), Lucknow, Uttar Pradesh, India; School of Biotechnology, Faculty of Science, Banaras Hindu University, Varanasi, Uttar Pradesh, India.
Plant Molecular Biology & Genetic Engineering Laboratory, Council of Scientific and Industrial Research, National Botanical Research Institute (CSIR-NBRI), Lucknow, Uttar Pradesh, India.
PLoS One. 2015 Aug 11;10(8):e0134709. doi: 10.1371/journal.pone.0134709. eCollection 2015.
The recruitment of RNA polymerase II on a promoter is assisted by the assembly of basal transcriptional machinery in eukaryotes. The Spt-Ada-Gcn5-Acetyltransferase (SAGA) complex plays an important role in transcription regulation in eukaryotes. However, even in the advent of genome sequencing of various plants, SAGA complex has been poorly defined for their components and roles in plant development and physiological functions. Computational analysis of Arabidopsis thaliana and Oryza sativa genomes for SAGA complex resulted in the identification of 17 to 18 potential candidates for SAGA subunits. We have further classified the SAGA complex based on the conserved domains. Phylogenetic analysis revealed that the SAGA complex proteins are evolutionary conserved between plants, yeast and mammals. Functional annotation showed that they participate not only in chromatin remodeling and gene regulation, but also in different biological processes, which could be indirect and possibly mediated via the regulation of gene expression. The in silico expression analysis of the SAGA components in Arabidopsis and O. sativa clearly indicates that its components have a distinct expression profile at different developmental stages. The co-expression analysis of the SAGA components suggests that many of these subunits co-express at different developmental stages, during hormonal interaction and in response to stress conditions. Quantitative real-time PCR analysis of SAGA component genes further confirmed their expression in different plant tissues and stresses. The expression of representative salt, heat and light inducible genes were affected in mutant lines of SAGA subunits in Arabidopsis. Altogether, the present study reveals expedient evidences of involvement of the SAGA complex in plant gene regulation and stress responses.
在真核生物中,启动子上RNA聚合酶II的募集由基础转录机制的组装辅助。Spt-Ada-Gcn5-乙酰转移酶(SAGA)复合物在真核生物的转录调控中起重要作用。然而,即使在各种植物基因组测序出现之后,SAGA复合物在植物发育和生理功能中的组成成分及作用仍未得到很好的界定。对拟南芥和水稻基因组进行SAGA复合物的计算分析,鉴定出了17至18个SAGA亚基的潜在候选物。我们根据保守结构域对SAGA复合物进行了进一步分类。系统发育分析表明,SAGA复合物蛋白在植物、酵母和哺乳动物之间具有进化保守性。功能注释显示,它们不仅参与染色质重塑和基因调控,还参与不同的生物学过程,这可能是间接的,并且可能是通过基因表达的调控介导的。拟南芥和水稻中SAGA成分的电子表达分析清楚地表明,其成分在不同发育阶段具有独特的表达谱。SAGA成分的共表达分析表明,这些亚基中的许多在不同发育阶段、激素相互作用期间以及对胁迫条件的响应中共同表达。SAGA成分基因的定量实时PCR分析进一步证实了它们在不同植物组织和胁迫中的表达。拟南芥中SAGA亚基突变体株系中代表性的盐、热和光诱导基因的表达受到影响。总之,本研究揭示了SAGA复合物参与植物基因调控和胁迫反应的有利证据。