4.3 Article

Monitoring indole alkaloid production by Penicillium digitatum during infection process in citrus by Mass Spectrometry Imaging and molecular networking

期刊

FUNGAL BIOLOGY
卷 123, 期 8, 页码 594-600

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.funbio.2019.03.002

关键词

Alkaloids; Citrus green mold; Insecticidal activity; Secondary metabolites

类别

资金

  1. Coordenacao de Aperfeicoamento de Pessoal de Nivel Superior-Brasil (CAPES) [001]
  2. Fundacao de Amparo a Pesquisa no Estado de Sao Paulo [FAPESP 2017/24462-4, 2018/03670-0]
  3. Pro-Reitoria de Pesquisa Unicamp (PRP/FAEPEX)
  4. CAPES [8887.137194/2017-00]
  5. FAPESP Young Investigator Award [2013/11343-6]

向作者/读者索取更多资源

Green mold, caused by Penicillium digitatum, is the most destructive post-harvest disease in citrus. Secondary metabolites produced by fungal phytopathogens have been associated with toxicity to their respective host through the interaction with a wide range of cell targets. Natural products have also been described as important molecules for biocontrol and competition in their respective environment. For P. digitatum, the production of indole alkaloids, tryptoquialanines A and B, have been reported. However, their biological role remains unknown. Mass Spectrometry Imaging (MSI) technique was applied here for the first time to monitor the secondary metabolites produced on the orange surface during infection in order to gain insights about the P. digitatum-citrus interaction mechanisms. Through the combination of MSI and molecular networking it was possible to report, for the first time, the production of trypto-quivalines and fumiquinazolines by P. digitatum and also the accumulation of tryptoquialanines on the fruit surface from 4 to 7 d post inoculation. P. digitatum was also evaluated concerning the ability to sinthesize indole alkaloids in vivo in the different citrus hosts. The biological role of tryptoquialanines was investigated and tryptoquialanine A was submitted to insecticidal bioassays that revealed its high toxicity against Aedes Aegypti, suggesting an important insecticidal action during orange decay. (C) 2019 British Mycological Society. Published by Elsevier Ltd. All rights reserved.

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