Kobayashi Akie, Takahashi Akiko, Kakimoto Yoko, Miyazawa Yutaka, Fujii Nobuharu, Higashitani Atsushi, Takahashi Hideyuki
Graduate School of Life Sciences, Tohoku University, 2-1-1 Katahira, Aoba-ku, Sendai 980-8577, Japan.
Proc Natl Acad Sci U S A. 2007 Mar 13;104(11):4724-9. doi: 10.1073/pnas.0609929104. Epub 2007 Mar 5.
Roots display hydrotropism in response to moisture gradients, which is thought to be important for controlling their growth orientation, obtaining water, and establishing their stand in the terrestrial environment. However, the molecular mechanism underlying hydrotropism remains unknown. Here, we report that roots of the Arabidopsis mutant mizu-kussei1 (miz1), which are impaired in hydrotropism, show normal gravitropism and elongation growth. The roots of miz1 plants showed reduced phototropism and a modified wavy growth response. There were no distinct differences in morphological features and root structure between miz1 and wild-type plants. These results suggest that the pathway inducing hydrotropism is independent of the pathways used in other tropic responses. The phenotype results from a single recessive mutation in MIZ1, which encodes a protein containing a domain (the MIZ domain) that is highly conserved among terrestrial plants such as rice and moss. The MIZ domain was not found in known genomes of organisms such as green algae, red algae, cyanobacteria, or animals. We hypothesize that MIZ1 has evolved to play an important role in adaptation to terrestrial life because hydrotropism could contribute to drought avoidance in higher plants. In addition, a pMIZ1::GUS fusion gene was expressed strongly in columella cells of the root cap but not in the elongation zone, suggesting that MIZ1 functions in the early phase of the hydrotropic response.
根会响应水分梯度表现出向水性,这被认为对于控制其生长方向、获取水分以及在陆地环境中立足非常重要。然而,向水性背后的分子机制仍然未知。在此,我们报告拟南芥突变体水势异常1(miz1)的根,其向水性受损,但表现出正常的向重力性和伸长生长。miz1植株的根表现出减弱的向光性和改变的波浪状生长反应。miz1与野生型植株在形态特征和根结构上没有明显差异。这些结果表明,诱导向水性的途径独立于其他向性反应所使用的途径。该表型由MIZ1中的一个单隐性突变导致,MIZ1编码一种含有一个结构域(MIZ结构域)的蛋白质,该结构域在诸如水稻和苔藓等陆地植物中高度保守。在绿藻、红藻、蓝细菌或动物等已知生物基因组中未发现MIZ结构域。我们推测MIZ1已经进化到在适应陆地生活中发挥重要作用,因为向水性可能有助于高等植物避免干旱。此外,一个pMIZ1::GUS融合基因在根冠的柱细胞中强烈表达,但在伸长区不表达,这表明MIZ1在向水性反应的早期阶段发挥作用。