Institut de Biologie des Plantes, UMR8618 CNRS, Université de Paris sud, 91405, Orsay Cedex, France.
Department of Biochemistry, University of Turku, FI-20014, Turku, Finland.
New Phytol. 2014 Apr;202(1):145-160. doi: 10.1111/nph.12622. Epub 2013 Dec 2.
Oxidative stress responses are influenced by growth day length, but little is known about how this occurs. A combined reverse genetics, metabolomics and proteomics approach was used to address this question in Arabidopsis thaliana. A catalase-deficient mutant (cat2), in which intracellular oxidative stress drives pathogenesis-related responses in a day length-dependent manner, was crossed with a knockdown mutant for a specific type 2A protein phosphatase subunit (pp2a-b'γ). In long days (LD), the pp2a-b'γ mutation reinforced cat2-triggered pathogenesis responses. In short days (SD), conditions in which pathogenesis-related responses were not activated in cat2, the additional presence of the pp2a-b'γ mutation allowed lesion formation, PATHOGENESIS-RELATED GENE1 (PR1) induction, salicylic acid (SA) and phytoalexin accumulation and the establishment of metabolite profiles that were otherwise observed in cat2 only in LD. Lesion formation in cat2 pp2a-b'γ in SD was genetically dependent on SA synthesis, and was associated with decreased PHYTOCHROME A transcripts. Phosphoproteomic analyses revealed that several potential protein targets accumulated in the double mutant, including recognized players in pathogenesis and key enzymes of primary metabolism. We conclude that the cat2 and pp2a-b'γ mutations interact synergistically, and that PP2A-B'γ is an important player in controlling day length-dependent responses to intracellular oxidative stress, possibly through phytochrome-linked pathways.
氧化应激反应受生长日照时间的影响,但目前对于这种影响是如何发生的知之甚少。本研究采用反向遗传学、代谢组学和蛋白质组学相结合的方法,在拟南芥中解决了这个问题。一种过氧化氢酶缺陷型突变体(cat2),其中细胞内氧化应激以依赖于日长的方式驱动与发病相关的反应,与一种特定的 2A 型蛋白磷酸酶亚基(pp2a-b'γ)的敲低突变体进行杂交。在长日照(LD)条件下,pp2a-b'γ 突变增强了 cat2 触发的发病相关反应。在短日照(SD)条件下,cat2 中不会激活与发病相关的反应,而额外存在的 pp2a-b'γ 突变允许损伤形成、病程相关基因 1(PR1)诱导、水杨酸(SA)和植物抗毒素积累,并建立代谢物图谱,而这些图谱在 LD 中仅在 cat2 中观察到。SD 中 cat2 pp2a-b'γ 的损伤形成在遗传上依赖于 SA 的合成,并与 PHYTOCHROME A 转录本的减少有关。磷酸化蛋白质组学分析表明,几种潜在的蛋白质靶标在双突变体中积累,包括发病过程中的公认参与者和初级代谢的关键酶。我们得出结论,cat2 和 pp2a-b'γ 突变体协同作用,PP2A-B'γ 是控制细胞内氧化应激对日照时间依赖性反应的重要参与者,可能通过光敏色素相关途径。