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玉米中phyB1和phyB2在调控幼苗及成熟植株性状方面的亚功能化

Subfunctionalization of PhyB1 and PhyB2 in the control of seedling and mature plant traits in maize.

作者信息

Sheehan Moira J, Kennedy Lisa M, Costich Denise E, Brutnell Thomas P

机构信息

Department of Plant Biology, Cornell University, Tower Road, Ithaca, NY 14853, USA.

出版信息

Plant J. 2007 Jan;49(2):338-53. doi: 10.1111/j.1365-313X.2006.02962.x. Epub 2006 Dec 20.

DOI:10.1111/j.1365-313X.2006.02962.x
PMID:17181778
Abstract

Phytochromes are the primary red/far-red photoreceptors of higher plants, mediating numerous developmental processes throughout the life cycle, from germination to flowering. In seed plants, phytochromes are encoded by a small gene family with each member performing both distinct and redundant roles in mediating physiological responses to light cues. Studies in both eudicot and monocot species have defined a central role for phytochrome B in mediating responses to light in the control of several agronomically important traits, including plant height, transitions to flowering and axillary branch meristem development. Here we characterize Mutator-induced alleles of PhyB1 and a naturally occurring deletion allele of PhyB2 in Zea mays (maize). Using single and double mutants, we show that the highly similar PhyB1 and PhyB2 genes encode proteins with both overlapping and non-redundant functions that control seedling and mature plant traits. PHYB1 and PHYB2 regulate elongation of sheath and stem tissues of mature plants and contribute to the light-mediated regulation of PhyA and Cab gene transcripts. However, PHYB1 and not PHYB2 contributes significantly to the inhibition of mesocotyl elongation under red light, whereas PHYB2 and to a lesser extent PHYB1 mediate the photoperiod-dependent floral transition. This sub functionalization of PHYB activities in maize has probably occurred since the tetraploidization of maize, and may contribute to flowering time variation in modern-day varieties.

摘要

光敏色素是高等植物主要的红光/远红光光感受器,介导从种子萌发到开花整个生命周期中的众多发育过程。在种子植物中,光敏色素由一个小基因家族编码,每个成员在介导对光信号的生理反应中发挥着独特且冗余的作用。对双子叶植物和单子叶植物的研究都表明,光敏色素B在介导对光的反应中起着核心作用,调控包括株高、开花转变和腋芽分生组织发育等几个重要农艺性状。在此,我们对玉米中Mutator诱导的PhyB1等位基因和天然存在的PhyB2缺失等位基因进行了表征。利用单突变体和双突变体,我们发现高度相似的PhyB1和PhyB2基因编码的蛋白质具有重叠和非冗余功能,可控制幼苗和成熟植株的性状。PHYB1和PHYB2调节成熟植株鞘和茎组织的伸长,并参与对PhyA和Cab基因转录本的光介导调控。然而,PHYB1而非PHYB2在红光下对中胚轴伸长的抑制起显著作用,而PHYB2以及程度较轻的PHYB1介导光周期依赖的开花转变。玉米中PHYB活性的这种亚功能化可能自玉米四倍体化以来就已发生,并且可能导致现代品种开花时间的变异。

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