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Galactinol is Involved in Induced Systemic Resistance against Bacterial Infection and Environmental Stresses
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  • Galactinol is Involved in Induced Systemic Resistance against Bacterial Infection and Environmental Stresses
  • Galactinol is Involved in Induced Systemic Resistance against Bacterial Infection and Environmental Stresses
저자명
Cho. Song-Mi,Kim. Su-Hyun,Kim. Young-Cheol,Yang. Kwang-Yeol,Kim. Kwang-Sang,Choi. Yong-Soo,Cho. Baik-Ho
간행물명
韓國資源植物學會誌
권/호정보
2010년|23권 3호|pp.248-255 (8 pages)
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한국자원식물학회
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정기간행물|ENG|
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이 논문은 한국과학기술정보연구원과 논문 연계를 통해 무료로 제공되는 원문입니다.
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기타언어초록

We previously demonstrated that root colonization of the rhizobacterium, Pseudomonas chlororaphis O6, induced expression of a galactinol synthase gene (CsGolS1), and resulting galactinol conferred induced systemic resistance (ISR) against fungal and bacterial pathogens in cucumber leaves. To examine the role of galactinol on ISR, drought or high salt stress, we obtained T-DNA insertion Arabidopsis mutants at the AtGolS1 gene, an ortholog of the CsGolS1 gene. The T-DNA insertion mutant compromised resistance induced by the O6 colonization against Erwinia carotovora. Pharmaceutical application of 0.5 - 5 mM galactinol on roots was sufficient to elicit ISR in wild-type Arabidopsis against infection with E. carotovora. The involvement of jasmonic acid (JA) signaling on the ISR was validated to detect increased expression of the indicator gene PDF1.2. The T-DNA insertion mutant also compromised tolerance by increasing galactinol content in the O6-colonized plant against drought or high salt stresses. Taken together, our results indicate that primed expression of the galactinol synthase gene AtGolS1in the O6-colonized plants can play a critical role in the ISR against infection with E. carotovora, and in the tolerance to drought or high salt stresses.