Song Giha, Son Seungmin, Lee Kyong Sil, Park Yeo Jin, Suh Eun Jung, Lee Soo In, Park Sang Ryeol
National Institute of Agricultural Sciences, Rural Development Administration, Jeonju 54874, Korea.
Plants (Basel). 2022 Jul 26;11(15):1938. doi: 10.3390/plants11151938.
The WRKY family of transcription factors plays a pivotal role in plant responses to biotic and abiotic stress. The WRKY Group III transcription factor OsWRKY114 is a positive regulator of innate immunity against pv. ; however, its role in abiotic stress responses is largely unknown. In this study, we showed that the abundant transcripts present in transgenic rice plants are reduced under drought conditions. The overexpression of significantly increased drought sensitivity in rice, which resulted in a lower survival rate after drought stress. Moreover, we showed that stomatal closure, which is a strategy to save water under drought, is restricted in -overexpressing plants compared with wild-type plants. The expression levels of genes, such as and that confer drought tolerance through stomatal closure, were also markedly lower in the -overexpressing plants. Taken together, these results suggest that OsWRKY114 negatively regulates plant tolerance to drought stress via inhibition of stomatal closure, which would otherwise prevent water loss in rice.
WRKY转录因子家族在植物对生物和非生物胁迫的响应中起着关键作用。WRKY III组转录因子OsWRKY114是针对稻瘟病菌的先天免疫的正调控因子;然而,其在非生物胁迫响应中的作用在很大程度上尚不清楚。在本研究中,我们发现转基因水稻植株中大量存在的转录本在干旱条件下会减少。OsWRKY114的过表达显著增加了水稻的干旱敏感性,导致干旱胁迫后的存活率降低。此外,我们发现,与野生型植物相比,在过表达OsWRKY114的植物中,作为干旱条件下节水策略的气孔关闭受到限制。通过气孔关闭赋予耐旱性的基因(如OsPIP2;1和OsPIP2;2)的表达水平在过表达OsWRKY114的植物中也显著降低。综上所述,这些结果表明,OsWRKY114通过抑制气孔关闭对植物耐旱胁迫产生负调控作用,否则气孔关闭将防止水稻水分流失。