IAA-Ala Resistant3, an Evolutionarily Conserved Target of miR167, MediatesArabidopsisRoot Architecture Changes during High Osmotic Stress

生物 拟南芥 生长素 渗透性休克 细胞生物学 核糖核酸 信使核糖核酸 拟南芥 侧根 小RNA 突变体 遗传学 基因
作者
Natsuko Kinoshita,Huan Wang,Hiroyuki Kasahara,Jun Liu,Cameron Ross MacPherson,Yasunori Machida,Yuji Kamiya,Matthew A. Hannah,Nam‐Hai Chua
出处
期刊:The Plant Cell [Oxford University Press]
卷期号:24 (9): 3590-3602 被引量:209
标识
DOI:10.1105/tpc.112.097006
摘要

The functions of microRNAs and their target mRNAs in Arabidopsis thaliana development have been widely documented; however, roles of stress-responsive microRNAs and their targets are not as well understood. Using small RNA deep sequencing and ATH1 microarrays to profile mRNAs, we identified IAA-Ala Resistant3 (IAR3) as a new target of miR167a. As expected, IAR3 mRNA was cleaved at the miR167a complementary site and under high osmotic stress miR167a levels decreased, whereas IAR3 mRNA levels increased. IAR3 hydrolyzes an inactive form of auxin (indole-3-acetic acid [IAA]-alanine) and releases bioactive auxin (IAA), a central phytohormone for root development. In contrast with the wild type, iar3 mutants accumulated reduced IAA levels and did not display high osmotic stress-induced root architecture changes. Transgenic plants expressing a cleavage-resistant form of IAR3 mRNA accumulated high levels of IAR3 mRNAs and showed increased lateral root development compared with transgenic plants expressing wild-type IAR3. Expression of an inducible noncoding RNA to sequester miR167a by target mimicry led to an increase in IAR3 mRNA levels, further confirming the inverse relationship between the two partners. Sequence comparison revealed the miR167 target site on IAR3 mRNA is conserved in evolutionarily distant plant species. Finally, we showed that IAR3 is required for drought tolerance.

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