Abscisic Acid Promotes Jasmonic Acid Accumulation and Plays a Key Role in Citrus Canker Development

Antagonism between jasmonic acid (JA) and salicylic acid (SA) plays pivotal roles in the fine-tuning of plant immunity against pathogen infection. In this study, we compared the phytohormonal responses to subsp. (Xcc) between the citrus canker-susceptible (S) cultivar Wanjincheng orange ( Osbeck) an...

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Veröffentlicht in:Frontiers in plant science 2019-12, Vol.10, p.1634-1634
Hauptverfasser: Long, Qin, Xie, Yu, He, Yongrui, Li, Qiang, Zou, Xiuping, Chen, Shanchun
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Sprache:eng
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Zusammenfassung:Antagonism between jasmonic acid (JA) and salicylic acid (SA) plays pivotal roles in the fine-tuning of plant immunity against pathogen infection. In this study, we compared the phytohormonal responses to subsp. (Xcc) between the citrus canker-susceptible (S) cultivar Wanjincheng orange ( Osbeck) and -resistant (R) cultivar Jindan ( Swingle). Upon Xcc infection, SA and JA were strongly induced in Jindan (R) and Wanjincheng orange (S), respectively, and JA appeared to contribute to citrus disease susceptibility by antagonizing SA-mediated effective defenses. A homologous gene encoding the allene oxide synthase (AOS) 1-2 enzyme, which catalyzes the first committed step in JA biosynthesis, was specifically upregulated in Wanjincheng orange (S) but not in Jindan (R). A promoter sequence analysis showed that abscisic acid (ABA)-responsive elements are enriched in the of Wanjincheng orange (S) but not in Jindan (R). Accordingly, ABA treatments could induce expression and JA accumulation, leading to enhanced citrus disease susceptibility in Wanjincheng orange (S), while the synthesis inhibitor sodium tungstate had the opposite effects. Moreover, ABA was specifically induced by Xcc infection in Wanjincheng orange (S) but not in Jindan (R). Thus, Xcc appeared to hijack host ABA biosynthesis to promote JA accumulation, which in turn suppressed effectual SA-mediated defenses to favor disease development in citrus. Our findings provide new insights into the molecular mechanisms underlying the differential citrus-canker resistance in citrus cultivars, and a new strategy for the biotechnological improvement of citrus canker resistance was discussed.
ISSN:1664-462X
1664-462X
DOI:10.3389/fpls.2019.01634