Sedbrook J, Boonsirichai K, Chen R, Hilson P, Pearlman R, Rosen E, Rutherford R, Batiza A, Carroll K, Schulz T, Masson P H
Laboratory of Genetics, University of Wisconsin-Madison, USA.
Gravit Space Biol Bull. 1998 May;11(2):71-8.
When Arabidopsis thaliana seedlings grow embedded in an agar-based medium, their roots grow vertically downward. This reflects their ability to sense the gravity vector and to position their tip parallel to it (gravitropism). We have isolated a number of mutations affecting root gravitropism in Arabidopsis thaliana. One of these mutations, named arg1, affects root and hypocotyl gravitropism without promoting defects in starch content or in the ability of seedlings' organs to respond to plant hormones. The ARG1 gene was cloned and shown to code for a protein with a J domain at its amino terminus and a second sequence motif found in several cytoskeleton binding proteins. Mutations in the AGR1 locus promote a strong defect in root gravitropism. Some alleles also confer an increased root resistance to exogenous ethylene and an increased sensitivity to auxin. AGR1 was cloned and found to encode a putative transmembrane protein which might be involved in polar auxin transport, or in regulating the differential growth response to gravistimulation. When Arabidopsis seedlings grow on the surface of agar-based media tilted backward, their roots wave. That wavy pattern of root growth derives from a combined response to gravity, touch and other surface-derived stimuli. It is accompanied by a reversible rotation of the root tip about its axis. A number of mutations affect the presence or the shape of root waves on tilted agar-based surfaces. One of them, wvc1, promotes the formation of compressed root waves under these conditions. The physiological and molecular analyses of this mutant suggest that a tryptophan-derived molecule other than IAA might be an important regulator of the curvature responsible for root waving.
当拟南芥幼苗生长在基于琼脂的培养基中时,它们的根垂直向下生长。这反映了它们感知重力矢量并使其根尖与重力矢量平行定位的能力(向地性)。我们已经分离出一些影响拟南芥根向地性的突变。其中一个名为arg1的突变,影响根和下胚轴的向地性,而不会导致淀粉含量或幼苗器官对植物激素的反应能力出现缺陷。ARG1基因被克隆,并显示编码一种在其氨基末端具有J结构域和在几种细胞骨架结合蛋白中发现的第二个序列基序的蛋白质。AGR1基因座中的突变会导致根向地性出现严重缺陷。一些等位基因还使根对外源乙烯的抗性增加,对生长素的敏感性增加。AGR1被克隆并发现编码一种可能参与极性生长素运输或调节对重力刺激的差异生长反应的推定跨膜蛋白。当拟南芥幼苗生长在向后倾斜的基于琼脂的培养基表面时,它们的根会弯曲。这种根生长的弯曲模式源自对重力、触摸和其他表面衍生刺激的综合反应。它伴随着根尖绕其轴的可逆旋转。一些突变影响倾斜的基于琼脂的表面上根弯曲的存在或形状。其中一个,wvc1,在这些条件下促进压缩根弯曲的形成。对该突变体的生理和分子分析表明,除IAA之外的一种色氨酸衍生分子可能是负责根弯曲的曲率的重要调节剂。