4.7 Article

Glutathione contributes to plant defence against parasitic cyst nematodes

期刊

MOLECULAR PLANT PATHOLOGY
卷 23, 期 7, 页码 1048-1059

出版社

WILEY
DOI: 10.1111/mpp.13210

关键词

glutathione; nematode; plant-parasitic nematode; redox; syncytium

资金

  1. Deutsche Forschungsgemeinschaft (DFG) [287570125, 390686111]
  2. Deutscher Akademischer Austauschdienst (DAAD) [91525252]

向作者/读者索取更多资源

Cyst nematodes are damaging parasitic organisms that infect crop plants, and this study reveals the role of glutathione in plant resistance to cyst nematode infection. Glutathione levels were found to influence plant susceptibility to the nematode, possibly by regulating the balance between cellular redox environment and the production of compounds related to defense against infection.
Cyst nematodes (CNs) are an important group of root-infecting sedentary endoparasites that severely damage many crop plants worldwide. An infective CN juvenile enters the host's roots and migrates towards the vascular cylinder, where it induces the formation of syncytial feeding cells, which nourish the CN throughout its parasitic stages. Here, we examined the role of glutathione (l-gamma-glutamyl-l-cysteinyl-glycine) in Arabidopsis thaliana on infection with the CN Heterodera schachtii. Arabidopsis lines with mutations pad2, cad2, or zir1 in the glutamate-cysteine ligase (GSH1) gene, which encodes the first enzyme in the glutathione biosynthetic pathway, displayed enhanced CN susceptibility, but susceptibility was reduced for rax1, another GSH1 allele. Biochemical analysis revealed differentially altered thiol levels in these mutants that was independent of nematode infection. All glutathione-deficient mutants exhibited impaired activation of defence marker genes as well as genes for biosynthesis of the antimicrobial compound camalexin early in infection. Further analysis revealed a link between glutathione-mediated plant resistance to CN infection and the production of camalexin on nematode infection. These results suggest that glutathione levels affect plant resistance to CN by fine-tuning the balance between the cellular redox environment and the production of compounds related to defence against infection.

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