Max-Planck-Institut für Molekulare Pflanzenphysiologie, Potsdam, Golm, 14476, Germany.
Departamento de Biologia Vegetal, Universidade Federal de Lavras, Lavras, Minas Gerais, 62700-000, Brazil.
Prog Biophys Mol Biol. 2019 Sep;146:37-49. doi: 10.1016/j.pbiomolbio.2018.11.006. Epub 2018 Nov 14.
Despite the fact that guard cell abscisic acid (ABA) signalling pathway is well documented, our understanding concerning how and to which extent ABA regulates guard cell metabolism remains fragmentary. Here we have adopted different systems approaches to investigate how ABA modulates guard cell central metabolism by providing genes that are possibly ABA-regulated. By using previous published Arabidopsis guard cell transcript profiling data, we carried out an extensive co-expression network analysis using ABA-related genes and those related to the metabolism and transport of sugars, starch and organic acids. Next, we investigated the presence of ABA responsive elements (ABRE) in the promoter of genes that are highly expressed in guard cells, responsive to ABA and co-expressed with ABA-related genes. Together, these analyses indicated that 44 genes are likely regulated by ABA and 8 of them are highly expressed in guard cells in both the presence and absence of ABA, including genes of the tricarboxylic acid cycle and those related to sucrose and hexose transport and metabolism. It seems likely that ABA may modulate both sucrose transport through guard cell plasma membrane and sucrose metabolism within guard cells. In this context, genes associated with sucrose synthase, sucrose phosphate synthase, trehalose-6-phosphate, invertase, UDP-glucose epimerase/pyrophosphorylase and different sugar transporters contain ABRE in their promoter and are thus possibly ABA regulated. Although validation experiments are required, our study highlights the importance of systems biology approaches to drive new hypothesis and to unravel genes and pathways that are regulated by ABA in guard cells.
尽管保卫细胞脱落酸(ABA)信号通路已经得到了很好的研究,但我们对于 ABA 如何以及在多大程度上调节保卫细胞代谢的理解仍然是零散的。在这里,我们采用了不同的系统方法来研究 ABA 通过提供可能受 ABA 调节的基因来调节保卫细胞中心代谢的方式。通过使用先前发表的拟南芥保卫细胞转录谱数据,我们使用与糖、淀粉和有机酸的代谢和转运相关的 ABA 相关基因和基因,进行了广泛的共表达网络分析。接下来,我们研究了在高表达于保卫细胞、对 ABA 有反应并与 ABA 相关基因共表达的基因启动子中是否存在 ABA 响应元件(ABRE)。总的来说,这些分析表明,44 个基因可能受到 ABA 的调节,其中 8 个基因在 ABA 存在和不存在的情况下在保卫细胞中高度表达,包括三羧酸循环基因和与蔗糖和己糖转运和代谢相关的基因。ABA 似乎可能调节保卫细胞质膜中的蔗糖转运和保卫细胞内的蔗糖代谢。在这种情况下,与蔗糖合酶、蔗糖磷酸合酶、海藻糖-6-磷酸、转化酶、UDP-葡萄糖差向异构酶/焦磷酸化酶和不同的糖转运体相关的基因在其启动子中含有 ABRE,因此可能受 ABA 调节。虽然需要进行验证实验,但我们的研究强调了系统生物学方法的重要性,这些方法可以推动新的假说,并阐明受 ABA 调节的基因和途径在保卫细胞中的作用。