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Toxin Induction and Protein Extraction from Fusarium spp. Cultures for Proteomic Studies
Published on: February 16, 2010
Proteome analysis of biofilm produced by a Fusarium falciforme keratitis infectious agent
Rosa Paulina Calvillo-Medina1, Juan Pablo Reyes-Grajeda2, Luis Barba-Escoto3
1Laboratorio de Microbiología y Proteómica, Instituto de Oftalmología "Fundación de Asistencia Privada Conde de Valenciana", Mexico City, Mexico; Laboratorio de Estructura de Proteínas, Instituto Nacional de Medicina Genómica, Mexico City, Mexico; Laboratorio de Microbiología Molecular, Universidad Autónoma de Querétaro, Qro, Mexico.
Abstract:
Biofilms are structures that confer adaptive ability to and facilitate the virulence of fungal pathogens. Certain multi-functional proteins have been shown to be involved in fungal pathogenesis and these proteins may also be implicated in biofilm formation. The aim of this study was to identify a fungal agent isolated from the human cornea, to analyze the ability of this organism to form biofilms in vitro and to investigate protein expression in this condition. The fungus was identified by phylogenetic inference analysis. Biofilm formation and structure were evaluated by colorimetric methods and by optical and electron microscopy. We also resolved proteins obtained from biofilms and planktonic cultures by two-dimensional gel electrophoresis and identified those proteins by mass spectrometry. The fungus was identified as Fusarium falciforme. Colorimetric analysis and microscopy revealed that the highest level of biofilm formation was obtained at a concentration of 1 × 106 conidia/mL with 96 h of incubation at 28 °C. The biofilm architecture consisted of an extracellular matrix that embedded fungal filaments. We found nineteen proteins that were over-expressed in biofilms, as compared with planktonic cultures, and six proteins with unique expression in biofilms. Among the more abundant proteins identified were: transketolase, a putative antigen 1, enolase, phosphoglycerate kinase and ATP-citrate synthase. Some of these proteins are involved in basal metabolism, function as multi-functional proteins or have been described as potential virulence factors. We focused on the expression in biofilm of the enzyme, enolase, which was determined by real-time PCR. Our findings provide a perspective on the proteins associated with the formation of biofilms in vitro by an F. falciforme keratitis isolate.
Insights
This study identifies Fusarium falciforme as a fungal agent causing keratitis and reveals key proteins, like enolase, over-expressed in its biofilms, offering insights into fungal pathogenesis.
Area of Science:
- Mycology
- Molecular Biology
- Pathogenesis
Background:
- Fungal biofilms enhance pathogen virulence and adaptability.
- Multi-functional proteins are implicated in fungal pathogenesis and biofilm formation.
Purpose of the Study:
- Identify a fungal agent from human cornea.
- Analyze its in vitro biofilm formation capacity.
- Investigate protein expression during biofilm development.
Main Methods:
- Phylogenetic inference for fungal identification.
- Colorimetric assays and microscopy for biofilm analysis.
- 2D gel electrophoresis and mass spectrometry for protein profiling.
Main Results:
- Fusarium falciforme identified as the causative agent.
- Optimal biofilm formation at 1x10^6 conidia/mL after 96h at 28°C.
- Nineteen over-expressed and six unique proteins identified in biofilms, including enolase, transketolase, and ATP-citrate synthase.
Conclusions:
- Fusarium falciforme forms robust biofilms with an extracellular matrix.
- Identified proteins are linked to metabolism, multi-functionality, and virulence.
- Enolase expression in biofilms warrants further investigation for therapeutic targets.
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