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向重性干扰向水性:黄瓜根中通过拮抗生长素动力学的定向盘旋和空间飞行实验。

Gravitropism interferes with hydrotropism via counteracting auxin dynamics in cucumber roots: clinorotation and spaceflight experiments.

机构信息

Graduate School of Life Sciences, Tohoku University, 2-1-1 Katahira, Aoba-ku, Sendai, 980-8577, Japan.

Japan Space Forum, 3-2-1 Kanda-Surugadai, Chiyoda-ku, Tokyo, 101-0062, Japan.

出版信息

New Phytol. 2017 Sep;215(4):1476-1489. doi: 10.1111/nph.14689. Epub 2017 Jul 19.

DOI:10.1111/nph.14689
PMID:28722158
Abstract

Roots of land plants show gravitropism and hydrotropism in response to gravity and moisture gradients, respectively, for controlling their growth orientation. Gravitropism interferes with hydrotropism, although the mechanistic aspects are poorly understood. Here, we differentiated hydrotropism from gravitropism in cucumber roots by conducting clinorotation and spaceflight experiments. We also compared mechanisms regulating hydrotropism and auxin-regulated gravitropism. Clinorotated or microgravity (μG)-grown cucumber seedling roots hydrotropically bent toward wet substrate in the presence of moisture gradients, but they grew straight in the direction of normal gravitational force at the Earth's surface (1G) on the ground or centrifuge-generated 1G in space. The roots appeared to become hydrotropically more sensitive to moisture gradients under μG conditions in space. Auxin transport inhibitors significantly reduced the hydrotropic response of clinorotated seedling roots. The auxin efflux protein CsPIN5 was differentially expressed in roots of both clinorotated and μG-grown seedlings; with higher expression in the high-humidity (concave) side than the low-humidity (convex) side of hydrotropically responding roots. Our results suggest that roots become hydrotropically sensitive in μG, and CsPIN5-mediated auxin transport has an important role in inducing root hydrotropism. Thus, hydrotropic and gravitropic responses in cucumber roots may compete via differential auxin dynamics established in response to moisture gradients and gravity.

摘要

陆生植物的根分别对重力和水分梯度表现出向重性和向水性,以控制其生长方向。向重性会干扰向水性,尽管其机制尚不清楚。在这里,我们通过倾斜旋转和太空飞行实验,将黄瓜根的向水性与向重性区分开来。我们还比较了调节向水性和生长素调节向重性的机制。在存在水分梯度的情况下,倾斜旋转或微重力(μG)生长的黄瓜幼苗根会向湿润的基质发生向水性弯曲,但在地面上的正常重力(1G)或离心力产生的 1G 下,它们会沿地球表面的正常重力方向笔直生长。在太空微重力条件下,根似乎对水分梯度变得更敏感。生长素运输抑制剂显著降低了倾斜旋转幼苗根的向水性反应。生长素外排蛋白 CsPIN5 在倾斜旋转和μG 生长的幼苗根中差异表达;在向水性响应根的高湿度(凹面)侧表达高于低湿度(凸面)侧。我们的结果表明,根在微重力下变得向水性敏感,CsPIN5 介导的生长素运输在诱导根向水性中起重要作用。因此,黄瓜根的向水性和向重性反应可能通过对水分梯度和重力的响应建立的不同生长素动力学来竞争。

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