Phosphate deprivation counteracts the cell death caused by loss-of-function of MEDIATOR 18 in Arabidopsis root meristems.

IF 2.5 3区 生物学 Q3 CELL BIOLOGY
María Fernanda Ballesteros-Barrera, Adrián Ávalos-Rangel, Javier Raya-González, Jesús Salvador López-Bucio, José López-Bucio
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Abstract

Mutation of MEDIATOR 18 leads to death of highly proliferating cells within the Arabidopsis root apical meristem, which impairs root growth. Phosphate (Pi) is a macronutrient required to support mitotic activity in meristems, and its deficiency causes root growth inhibition; thus, we hypothesized that Pi availability could influence cell viability as well. With this in mind, in vitro experiments were performed varying the Pi concentration (0, 1, 10, and 250 µM) in the growth medium of Arabidopsis WT seedlings and med18-1 mutants to analyze meristem integrity and root hair development and correlate it with gene expression of selected promoter-reporter gene fusions. We found that WT (Col-0) seedlings entered the already reported determinate root growth program that terminates mitosis and differentiates primary root meristems at low (0, 1, and 10 µM) Pi concentrations. Unexpectedly, in marked contrast to the WT, med18-1 null mutant seedlings had healthy meristems under low Pi availability, and the cell death occurred only at high Pi (250 µM Pi). Root hair density and length were greater in med18-1 mutants than WT at all Pi concentrations tested. Gene expression analyses for cell cycle, auxin, and damage response as well as detection of hydrogen peroxide indicated that MED18 promotes the transit from cell division into differentiation of primary root tips induced by Pi starvation but protects the root meristem from genotoxic stress upon zeocin application. These results uncover an unexpected finding in which the lack of an essential macronutrient decreases the genotoxic pressure to highly proliferating plant cells.

在拟南芥根分生组织中,磷酸盐剥夺抵消了由MEDIATOR 18功能丧失引起的细胞死亡。
调解18的突变会导致拟南芥根尖分生组织内高度增殖的细胞死亡,从而影响根的生长。磷酸盐(Pi)是支持分生组织有丝分裂活动所需的大量营养素,其缺乏会导致根生长抑制;因此,我们假设Pi的可用性也会影响细胞的活力。考虑到这一点,我们在拟南芥WT幼苗和med18-1突变体的生长培养基中进行了不同浓度(0、1、10和250µM)的体外实验,以分析分生组织完整性和根毛发育,并将其与选定的启动子报告基因融合的基因表达联系起来。我们发现WT (Col-0)幼苗在低(0,1和10µM) Pi浓度下进入了已经报道的确定的根生长程序,终止有丝分裂并分化初生根分生组织。出乎意料的是,与WT形成鲜明对比的是,med18-1零突变体幼苗在低Pi有效度下有健康的分生组织,仅在高Pi(250µM Pi)时发生细胞死亡。在所有测试的Pi浓度下,med18-1突变体的根毛密度和长度都大于WT。细胞周期、生长素和损伤反应的基因表达分析以及过氧化氢检测表明,MED18促进了Pi饥饿诱导的初生根尖细胞分裂向分化的过渡,但在使用zeocin时保护根分生组织免受基因毒性胁迫。这些结果揭示了一个意想不到的发现,即缺乏一种必需的大量营养素会降低对高度增殖的植物细胞的遗传毒性压力。
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来源期刊
Protoplasma
Protoplasma 生物-细胞生物学
CiteScore
6.60
自引率
6.90%
发文量
99
审稿时长
4-8 weeks
期刊介绍: Protoplasma publishes original papers, short communications and review articles which are of interest to cell biology in all its scientific and applied aspects. We seek contributions dealing with plants and animals but also prokaryotes, protists and fungi, from the following fields: cell biology of both single and multicellular organisms molecular cytology the cell cycle membrane biology including biogenesis, dynamics, energetics and electrophysiology inter- and intracellular transport the cytoskeleton organelles experimental and quantitative ultrastructure cyto- and histochemistry Further, conceptual contributions such as new models or discoveries at the cutting edge of cell biology research will be published under the headings "New Ideas in Cell Biology".
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