Department of Biological Sciences, University of Wisconsin-Milwaukee, Milwaukee, WI 53211, USA.
Sci Rep. 2016 Jul 21;6:29938. doi: 10.1038/srep29938.
MicroRNAs (miRNAs) control gene expression as key negative regulators at the post-transcriptional level. MiR160 plays a pivotal role in Arabidopsis growth and development through repressing expression of its target AUXIN RESPONSE FACTOR (ARF) genes; however, the function of miR160 in monocots remains elusive. In this study, we found that the mature rice miR160 (OsmiR160) was mainly derived from OsMIR160a and OsMIR160b genes. Among four potential OsmiR160 target OsARF genes, the OsARF18 transcript was cleaved at the OsmiR160 target site. Rice transgenic plants (named mOsARF18) expressing an OsmiR160-resistant version of OsARF18 exhibited pleiotropic defects in growth and development, including dwarf stature, rolled leaves, and small seeds. mOsARF18 leaves were abnormal in bulliform cell differentiation and epidermal cell division. Starch accumulation in mOsARF18 seeds was also reduced. Moreover, auxin induced expression of OsMIR160a, OsMIR160b, and OsARF18, whereas expression of OsMIR160a and OsMIR160b as well as genes involved in auxin signaling was altered in mOsARF18 plants. Our results show that negative regulation of OsARF18 expression by OsmiR160 is critical for rice growth and development via affecting auxin signaling, which will advance future studies on the molecular mechanism by which miR160 fine-tunes auxin signaling in plants.
microRNAs (miRNAs) 作为关键的负调控因子在转录后水平上控制基因表达。miR160 通过抑制其靶标 AUXIN RESPONSE FACTOR (ARF) 基因的表达,在拟南芥的生长和发育中发挥关键作用;然而,miR160 在单子叶植物中的功能仍不清楚。在本研究中,我们发现成熟的水稻 miR160 (OsmiR160) 主要来源于 OsMIR160a 和 OsMIR160b 基因。在四个潜在的 OsmiR160 靶标 OsARF 基因中,OsARF18 的转录本在 OsmiR160 靶位点被切割。表达 OsARF18 的耐 OsmiR160 版本的水稻转基因植株(命名为 mOsARF18)表现出生长和发育的多效缺陷,包括矮化、卷叶和小种子。mOsARF18 叶片在泡状细胞分化和表皮细胞分裂方面异常。mOsARF18 种子中的淀粉积累也减少了。此外,生长素诱导 OsMIR160a、OsMIR160b 和 OsARF18 的表达,而 mOsARF18 植株中 OsMIR160a 和 OsMIR160b 以及参与生长素信号的基因的表达也发生了改变。我们的研究结果表明,OsmiR160 对 OsARF18 表达的负调控对于水稻的生长和发育至关重要,通过影响生长素信号,这将推进未来对 miR160 如何在植物中精细调节生长素信号的分子机制的研究。