Fujii Nobuharu, Miyabayashi Sachiko, Sugita Tomoki, Kobayashi Akie, Yamazaki Chiaki, Miyazawa Yutaka, Kamada Motoshi, Kasahara Haruo, Osada Ikuko, Shimazu Toru, Fusejima Yasuo, Higashibata Akira, Yamazaki Takashi, Ishioka Noriaki, Takahashi Hideyuki
Graduate School of Life Sciences, Tohoku University, Katahira, Aoba-ku, Sendai, Japan.
Japan Space Forum, Kanda-Surugadai, Chiyoda-ku, Tokyo, Japan.
PLoS One. 2018 Jan 11;13(1):e0189827. doi: 10.1371/journal.pone.0189827. eCollection 2018.
In cucumber seedlings, gravitropism interferes with hydrotropism, which results in the nearly complete inhibition of hydrotropism under stationary conditions. However, hydrotropic responses are induced when the gravitropic response in the root is nullified by clinorotation. Columella cells in the root cap sense gravity, which induces the gravitropic response. In this study, we found that removing the root tip induced hydrotropism in cucumber roots under stationary conditions. The application of auxin transport inhibitors to cucumber seedlings under stationary conditions suppressed the hydrotropic response induced by the removal of the root tip. To investigate the expression of genes related to hydrotropism in de-tipped cucumber roots, we conducted transcriptome analysis of gene expression by RNA-Seq using seedlings exhibiting hydrotropic and gravitropic responses. Of the 21 and 45 genes asymmetrically expressed during hydrotropic and gravitropic responses, respectively, five genes were identical. Gene ontology (GO) analysis indicated that the category auxin-inducible genes was significantly enriched among genes that were more highly expressed in the concave side of the root than the convex side during hydrotropic or gravitropic responses. Reverse transcription followed by quantitative polymerase chain reaction (RT-qPCR) analysis revealed that root hydrotropism induced under stationary conditions (by removing the root tip) was accompanied by the asymmetric expression of several auxin-inducible genes. However, intact roots did not exhibit the asymmetric expression patterns of auxin-inducible genes under stationary conditions, even in the presence of a moisture gradient. These results suggest that the root tip inhibits hydrotropism by suppressing the induction of asymmetric auxin distribution. Auxin transport and distribution not mediated by the root tip might play a role in hydrotropism in cucumber roots.
在黄瓜幼苗中,向地性会干扰向水性,这导致在静止条件下向水性几乎被完全抑制。然而,当通过回转器使根的向地性反应无效时,会诱导产生向水反应。根冠中的柱细胞感知重力,从而诱导向地性反应。在本研究中,我们发现去除根尖会在静止条件下诱导黄瓜根产生向水性。在静止条件下对黄瓜幼苗施用生长素运输抑制剂会抑制因去除根尖而诱导的向水反应。为了研究去尖黄瓜根中与向水性相关基因的表达,我们使用表现出向水和向地反应的幼苗,通过RNA测序对基因表达进行了转录组分析。在向水和向地反应过程中分别不对称表达的21个和45个基因中,有5个基因是相同的。基因本体(GO)分析表明,在向水或向地反应过程中,生长素诱导基因类别在根凹侧比凸侧表达更高的基因中显著富集。逆转录随后进行定量聚合酶链反应(RT-qPCR)分析表明,在静止条件下(通过去除根尖)诱导的根向水性伴随着几个生长素诱导基因的不对称表达。然而,即使在存在水分梯度的情况下,完整的根在静止条件下也未表现出生长素诱导基因的不对称表达模式。这些结果表明,根尖通过抑制不对称生长素分布的诱导来抑制向水性。不由根尖介导的生长素运输和分布可能在黄瓜根的向水性中起作用。