An Essential Role of Mitochondrial alpha-Ketoglutarate Dehydrogenase E2 in the Basal Immune Response Against Bacterial Pathogens in Tomato

Plants intensely modulate respiration when pathogens attack, but the function of mitochondrial respiration-related genes in plant-bacteria interaction is largely unclear. Here, the functions of alpha-ketoglutarate dehydrogenase (alpha-kGDH) E2 subunit and alternative oxidase (AOX) were investigated...

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Veröffentlicht in:Frontiers in plant science 2020-10, Vol.11, p.579772-579772, Article 579772
Hauptverfasser: Ma, Qiaomei, Liu, Yaru, Fang, Hanmo, Wang, Ping, Ahammed, Golam Jalal, Zai, Wenshan, Shi, Kai
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Sprache:eng
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Zusammenfassung:Plants intensely modulate respiration when pathogens attack, but the function of mitochondrial respiration-related genes in plant-bacteria interaction is largely unclear. Here, the functions of alpha-ketoglutarate dehydrogenase (alpha-kGDH) E2 subunit and alternative oxidase (AOX) were investigated in the interaction between tomato and the virulent bacterial pathogen Pseudomonas syringae pv. tomato DC3000 (Pst). Pst inoculation suppressed the transcript abundance of alpha-kGDH E2, but enhanced AOX expression and salicylic acid (SA) accumulation. Gene silencing and transient overexpression approaches revealed that plant susceptibility to Pst was significantly reduced by silencing alpha-kGDH E2 in tomato, but increased by overexpressing alpha-kGDH E2 in Nicotiana benthamiana, whereas silencing or overexpressing of AOX1a did not affect plant defense. Moreover, silencing octanoyltransferase (LIP2), engaged in the lipoylation of alpha-kGDH E2, significantly reduced disease susceptibility and hydrogen peroxide accumulation. Use of transgenic NahG tomato plants that cannot accumulate SA as well as the exogenous SA application experiment evidenced that alpha-kGDH E2 acts downstream of SA defense pathway. These results demonstrate tomato alpha-kGDH E2 plays a negative role in plant basal defense against Pst in an AOX-independent pathway but was associated with lipoylation and SA defense pathways. The findings help to elucidate the mechanisms of mitochondria-involved plant basal immunity.
ISSN:1664-462X
1664-462X
DOI:10.3389/fpls.2020.579772