生物
拟南芥
热冲击系数
发起人
基因
热休克蛋白
非生物胁迫
热冲击
细胞生物学
遗传学
基因表达
热休克蛋白70
突变体
作者
Kyonoshin Maruyama,T. Ogata,Norihito Kanamori,Kyouko Yoshiwara,Shingo Goto,Yoshiharu Y. Yamamoto,Yuko Tokoro,Noda Chihiro,Takaki Yuta,Hiroko Urawa,Satoshi Iuchi,Kaoru Urano,Toshinori Yoshida,Tetsuya Sakurai,Mikiko Kojima,Hitoshi Sakakibara,Kazuo Shinozaki,Kazuko Yamaguchi‐Shinozaki
出处
期刊:Plant Journal
[Wiley]
日期:2016-11-16
卷期号:89 (4): 671-680
被引量:26
摘要
Interactions between heat shock (HS) factors (HSFs) and heat shock response elements (HSEs) are important during the heat shock response (HSR) of flora and fauna. Moreover, plant HSFs that are involved in heat stress are also involved in abiotic stresses such as dehydration and cold as well as development, cell differentiation and proliferation. Because the specific combination of HSFs and HSEs involved in plants under heat stress remains unclear, the mechanism of their interaction has not yet been utilized in molecular breeding of plants for climate change. For the study reported herein, we compared the sequences of HS-inducible genes and their promoters in Arabidopsis, soybean, rice and maize and then designed an optimal HS-inducible promoter. Our analyses suggest that, for the four species, the abscisic acid-independent, HSE/HSF-dependent transcriptional pathway plays a major role in HS-inducible gene expression. We found that an 18-bp sequence that includes the HSE has an important role in the HSR, and that those sequences could be classified as representative of monocotyledons or dicotyledons. With the HS-inducible promoter designed based on our bioinformatic predictions, we were able to develop an optimal HS-specific inducible promoter for seedlings or single cells in roots. These findings demonstrate the utility of our HS-specific inducible promoter, which we expect will contribute to molecular breeding efforts and cell-targeted gene expression in specific plant tissues.
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