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玉米幼苗发育中的光形态建成反应。

Photomorphogenic responses in maize seedling development.

作者信息

Markelz Nicole H, Costich Denise E, Brutnell Thomas P

机构信息

Boyce Thompson Institute, Cornell University, Tower Road, Ithaca, New York 14853, USA.

出版信息

Plant Physiol. 2003 Dec;133(4):1578-91. doi: 10.1104/pp.103.029694. Epub 2003 Nov 26.

Abstract

As an emerging maize (Zea mays) seedling senses light, there is a decrease in the rate of mesocotyl elongation, an induction of root growth, and an expansion of leaves. In leaf tissues, mesophyll and bundle sheath cell fate is determined, and the proplastids of each differentiate into the dimorphic chloroplasts typical of each cell type. Although it has been inferred from recent studies in several model plant species that multiple photoreceptor systems mediate this process, surprisingly little is known of light signal transduction in maize. Here, we examine two photomorphogenic responses in maize: inhibition of mesocotyl elongation and C4 photosynthetic differentiation. Through an extensive survey of white, red, far-red, and blue light responses among a diverse collection of germplasm, including a phytochrome-deficient mutant elm1, we show that light response is a highly variable trait in maize. Although all inbreds examined appear to have a functional phytochrome signal transduction pathway, several lines showed reduced sensitivity to blue light. A significant correlation was observed between light response and subpopulation, suggesting that light responsiveness may be a target of artificial selection. An examination of C4 gene expression patterns under various light regimes in the standard W22 inbred and elm1 indicate that cell-specific patterns of C4 gene expression are maintained in fully differentiated tissues independent of light quality. To our knowledge, these findings represent the first comprehensive survey of light response in maize and are discussed in relation to maize breeding strategies.

摘要

当一株新出现的玉米幼苗感知到光时,中胚轴伸长速率会降低,根系生长会被诱导,叶片会展开。在叶片组织中,叶肉细胞和维管束鞘细胞的命运得以确定,每个细胞的前质体分化为每种细胞类型特有的双型叶绿体。尽管最近在几种模式植物物种中的研究推断多个光受体系统介导这一过程,但令人惊讶的是,人们对玉米中的光信号转导知之甚少。在这里,我们研究了玉米中的两种光形态建成反应:中胚轴伸长的抑制和C4光合分化。通过对包括缺乏光敏色素的突变体elm1在内的多种种质资源中白光、红光、远红光和蓝光反应的广泛调查,我们表明光反应在玉米中是一个高度可变的性状。尽管所有检测的自交系似乎都有一个功能性的光敏色素信号转导途径,但有几个品系对蓝光的敏感性降低。在光反应和亚群之间观察到显著的相关性,这表明光反应性可能是人工选择的一个目标。对标准W22自交系和elm1在各种光照条件下C4基因表达模式的研究表明,C4基因表达的细胞特异性模式在完全分化的组织中得以维持,与光质无关。据我们所知,这些发现代表了对玉米光反应的首次全面调查,并结合玉米育种策略进行了讨论。

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本文引用的文献

2
Photomorphogenesis.
Arabidopsis Book. 2002;1:e0054. doi: 10.1199/tab.0054. Epub 2002 Aug 12.
4
Phytochrome control of levels of mRNA complementary to plastid and nuclear genes of maize.
Plant Physiol. 1985 Oct;79(2):371-6. doi: 10.1104/pp.79.2.371.
5
6
Red Light-inhibited Mesocotyl Elongation in Maize Seedlings: II. Kinetic and Spectral Studies.
Plant Physiol. 1979 Jun;63(6):1062-7. doi: 10.1104/pp.63.6.1062.
7
Red Light-inhibited Mesocotyl Elongation in Maize Seedlings: I. The Auxin Hypothesis.
Plant Physiol. 1978 Apr;61(4):534-7. doi: 10.1104/pp.61.4.534.
9
C4 GENE EXPRESSION.
Annu Rev Plant Physiol Plant Mol Biol. 1999 Jun;50:187-217. doi: 10.1146/annurev.arplant.50.1.187.
10
Adaptation of photoperiodic control pathways produces short-day flowering in rice.
Nature. 2003 Apr 17;422(6933):719-22. doi: 10.1038/nature01549.

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