Lee Byung Ha, Kim Jeong Hoe
a Department of Biology; Kyungpook National University; Daegu, Korea.
Plant Signal Behav. 2014;9(9):e29697. doi: 10.4161/psb.29697.
Developmental biologists have been fascinated with the long-standing mystery of how multicellular organisms, such as plants and animals, sense and control their organ size. In plants, leaves are a suitable experimental system for elucidation of the mystery, because they, like animal organs, inherently exhibit a determinate growth pattern, meaning that they possess genetic information for the control of their final size. The cell proliferation and expansion processes are prerequisites for growth, so that the genetic controls should converge on the 2 cellular processes and decide their rate or duration during leaf growth. Plant scientists have found dozens of genes involved in the control of the cellular processes, including the Arabidopsis thaliana GRF-INTERACTING FACTOR (GIF) family. The GIF family consists of 3 members, GIF1 to GIF3, and encodes a class of transcription co-activators. Although the GIF family genes have been shown to play an essential role in the control of cell proliferation of the leaf organ, understanding of the spatio-temporal behaviors of GIF expression, in both aspects of their promoters and proteins, has been limited to GIF1 (also known as ANGUSTIFOLIA3, AN3). Here, we define kinematic growth properties of wild-type and gif leaf organs and present spatio-temporal expression patterns of all GIF genes, thus providing comprehensive insights into biological roles and expression behaviors of the whole GIF family members during leaf growth.
发育生物学家一直着迷于一个长期存在的谜团,即像植物和动物这样的多细胞生物如何感知和控制其器官大小。在植物中,叶子是阐明这一谜团的合适实验系统,因为与动物器官一样,叶子本身呈现出一种确定的生长模式,这意味着它们拥有控制其最终大小的遗传信息。细胞增殖和扩张过程是生长的先决条件,因此遗传控制应该集中在这两个细胞过程上,并决定它们在叶片生长过程中的速率或持续时间。植物科学家已经发现了数十个参与控制这些细胞过程的基因,包括拟南芥GRF相互作用因子(GIF)家族。GIF家族由3个成员GIF1至GIF3组成,并编码一类转录共激活因子。尽管已经证明GIF家族基因在叶片器官细胞增殖的控制中起着至关重要的作用,但对GIF在启动子和蛋白质两方面的时空表达行为的了解仅限于GIF1(也称为窄叶3,AN3)。在这里,我们定义了野生型和gif叶片器官的运动生长特性,并展示了所有GIF基因的时空表达模式,从而全面深入了解整个GIF家族成员在叶片生长过程中的生物学作用和表达行为。