CNRS, INRAE, Institute of Plant Sciences Paris-Saclay (IPS2), Université Evry, Université Paris-Saclay, F-91405 Orsay, France.
CNRS, Laboratoire de Biologie du Développement, Sorbonne Université, F-75005 Paris, France.
Int J Mol Sci. 2021 Sep 27;22(19):10395. doi: 10.3390/ijms221910395.
In Arabidopsis seeds, ROS have been shown to be enabling actors of cellular signaling pathways promoting germination, but their accumulation under stress conditions or during aging leads to a decrease in the ability to germinate. Previous biochemical work revealed that a specific class of plastid thioredoxins (Trxs), the y-type Trxs, can fulfill antioxidant functions. Among the ten plastidial Trx isoforms identified in Arabidopsis, Trx y1 mRNA is the most abundant in dry seeds. We hypothesized that Trx y1 and Trx y2 would play an important role in seed physiology as antioxidants. Using reverse genetics, we found important changes in the corresponding Arabidopsis mutant seeds. They display remarkable traits such as increased longevity and higher and faster germination in conditions of reduced water availability or oxidative stress. These phenotypes suggest that Trxs y do not play an antioxidant role in seeds, as further evidenced by no changes in global ROS contents and protein redox status found in the corresponding mutant seeds. Instead, we provide evidence that marker genes of ABA and GAs pathways are perturbed in mutant seeds, together with their sensitivity to specific hormone inhibitors. Altogether, our results suggest that Trxs y function in Arabidopsis seeds is not linked to their previously identified antioxidant roles and reveal a new role for plastid Trxs linked to hormone regulation.
在拟南芥种子中,ROS 已被证明是促进萌发的细胞信号通路的有效作用因子,但在胁迫条件下或衰老过程中,ROS 的积累会导致种子萌发能力下降。先前的生化研究表明,一类特定的质体硫氧还蛋白(Trxs),即 y 型 Trxs,可以发挥抗氧化功能。在拟南芥中鉴定出的 10 种质体 Trx 同工型中,Trx y1 mRNA 在干燥种子中丰度最高。我们假设 Trx y1 和 Trx y2 作为抗氧化剂在种子生理学中发挥重要作用。通过反向遗传学,我们发现相应的拟南芥突变体种子发生了重要变化。它们表现出显著的特征,例如在水分减少或氧化应激条件下,种子寿命延长、萌发更快更高。这些表型表明 Trxs y 在种子中不发挥抗氧化作用,这进一步证明了在相应的突变体种子中没有发现 ROS 含量和蛋白质氧化还原状态的全局变化。相反,我们提供的证据表明,突变体种子中 ABA 和 GA 途径的标记基因受到干扰,同时对特定激素抑制剂的敏感性也发生了变化。总之,我们的研究结果表明,Trxs y 在拟南芥种子中的功能与其先前确定的抗氧化作用无关,揭示了质体 Trxs 与激素调节相关的新作用。