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拟南芥中phyC突变体的分离与鉴定揭示了光敏色素信号通路之间复杂的相互作用。

Isolation and characterization of phyC mutants in Arabidopsis reveals complex crosstalk between phytochrome signaling pathways.

作者信息

Monte Elena, Alonso José M, Ecker Joseph R, Zhang Yuelin, Li Xin, Young Jeff, Austin-Phillips Sandra, Quail Peter H

机构信息

Department of Plant and Microbial Biology, University of California, Berkeley, California 94720, USA.

出版信息

Plant Cell. 2003 Sep;15(9):1962-80. doi: 10.1105/tpc.012971.

Abstract

Studies with mutants in four members of the five-membered Arabidopsis phytochrome (phy) family (phyA, phyB, phyD, and phyE) have revealed differential photosensory and/or physiological functions among them, but identification of a phyC mutant has proven elusive. We now report the isolation of multiple phyC mutant alleles using reverse-genetics strategies. Molecular analysis shows that these mutants have undetectable levels of phyC protein, suggesting that they are null for the photoreceptor. phyC mutant seedlings were indistinguishable from wild-type seedlings under constant far-red light (FRc), and phyC deficiency had no effect in the phyA mutant background under FRc, suggesting that phyC does not participate in the control of seedling deetiolation under FRc. However, when grown under constant red light (Rc), phyC seedlings exhibited a partial loss of sensitivity, observable as longer hypocotyls and smaller cotyledons than those seen in the wild type. Although less severe, this phenotype resembles the effect of phyB mutations on photoresponsiveness, indicating that both photoreceptors function in regulating seedling deetiolation in response to Rc. On the other hand, phyB phyC double mutants did not show any apparent decrease in sensitivity to Rc compared with phyB seedlings, indicating that the phyC mutation in the phyB-deficient background does not have an additive effect. These results suggest that phyB is necessary for phyC function. This functional dependence correlates with constitutively lower levels of phyC observed in the phyB mutant compared with the wild type, a decrease that seems to be regulated post-transcriptionally. phyC mutants flowered early when grown in short-day photoperiods, indicating that phyC plays a role in the perception of daylength. phyB phyC double mutant plants flowered similarly to phyB plants, indicating that in the phyB background, phyC deficiency does not further accelerate flowering. Under long-day photoperiods, phyA phyC double mutant plants flowered later than phyA plants, suggesting that phyC is able to promote flowering in the absence of phyA. Together, these results suggest that phyC is involved in photomorphogenesis throughout the life cycle of the plant, with a photosensory specificity similar to that of phyB/D/E and with a complex pattern of differential crosstalk with phyA and phyB in the photoregulation of multiple developmental processes.

摘要

对拟南芥五聚体光敏色素(phy)家族中四个成员(phyA、phyB、phyD和phyE)的突变体研究揭示了它们之间不同的光感和/或生理功能,但phyC突变体的鉴定却一直难以实现。我们现在报告使用反向遗传学策略分离出多个phyC突变等位基因。分子分析表明,这些突变体中phyC蛋白水平检测不到,这表明它们对于该光感受器而言是无效的。在持续远红光(FRc)条件下,phyC突变体幼苗与野生型幼苗没有区别,并且在FRc条件下,phyC缺失在phyA突变背景中没有影响,这表明phyC不参与FRc条件下幼苗去黄化的调控。然而,在持续红光(Rc)条件下生长时,phyC幼苗表现出部分敏感性丧失,表现为下胚轴比野生型更长,子叶比野生型更小。尽管不那么严重,但这种表型类似于phyB突变对光反应性的影响,表明这两种光感受器在响应Rc调节幼苗去黄化过程中都起作用。另一方面,与phyB幼苗相比,phyB phyC双突变体对Rc的敏感性没有明显降低,这表明在phyB缺陷背景中的phyC突变没有累加效应。这些结果表明phyB对于phyC功能是必需的。这种功能依赖性与在phyB突变体中观察到的phyC水平相比野生型持续较低相关,这种降低似乎是在转录后受到调控的。phyC突变体在短日照光周期下生长时开花较早,这表明phyC在日长感知中起作用。phyB phyC双突变体植物的开花情况与phyB植物相似,这表明在phyB背景下,phyC缺失不会进一步加速开花。在长日照光周期下,phyA phyC双突变体植物比phyA植物开花更晚,这表明phyC在没有phyA的情况下能够促进开花。总之,这些结果表明phyC参与植物整个生命周期的光形态建成,具有与phyB/D/E相似的光感特异性,并且在多个发育过程的光调节中与phyA和phyB存在复杂的差异相互作用模式。

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