Proteomics analysis of Fusarium proliferatum under various initial pH during fumonisin production

Taotao Li1, Liang Gong2, Yong Wang3

  • 1Key Laboratory of Plant Resource Conservation and Sustainable Utilization, Guangdong Provincial Key Laboratory of Applied Botany, South China Botanical Garden, Chinese Academy of Sciences, Guangzhou 510650, China; University of Chinese Academy of Sciences, Beijing 100039, China.

Insights

Fusarium proliferatum produces more fumonisin at pH 10 than pH 5. This difference is linked to specific proteins involved in fumonisin synthesis or inhibition, offering insights into mycotoxin production.

Area of Science:

  • Mycology
  • Proteomics
  • Food Safety

Background:

  • Fusarium proliferatum is a fungal pathogen that produces fumonisin, a mycotoxin posing risks to animal and human health.
  • Understanding fumonisin biosynthesis is crucial for mitigating its impact.

Purpose of the Study:

  • To investigate the effect of initial pH on fumonisin production in Fusarium proliferatum.
  • To identify differentially expressed proteins in response to varying pH conditions and their role in fumonisin biosynthesis.

Main Methods:

  • Culturing Fusarium proliferatum at initial pH 5 and pH 10.
  • Analyzing fumonisin content and mycelial proteins using 2D-PAGE, MALDI-TOF/TOF, and LC-ESI-MS/MS.

Main Results:

  • Fumonisin production was significantly higher at pH 10 compared to pH 5.
  • Proteomic analysis identified 89 differentially accumulated proteins, with 45 up-accumulated at pH 10 and 44 at pH 5.
  • Proteins like polyketide synthase and cytochrome P450 were upregulated at pH 10, potentially inducing fumonisin synthesis, while others like l-amino-acid oxidase were upregulated at pH 5, possibly inhibiting it.

Conclusions:

  • Initial pH significantly influences fumonisin production in Fusarium proliferatum.
  • Differential protein expression, particularly involving enzymes in the fumonisin backbone modification pathway, plays a key role in regulating mycotoxin biosynthesis.
  • These findings enhance our understanding of the molecular mechanisms underlying fumonisin synthesis.

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