Related Experiment Video
Updated: May 12, 2026

Methods to Inhibit Bacterial Pyomelanin Production and Determine the Corresponding Increase in Sensitivity to Oxidative Stress
Published on: August 31, 2015
Melanin depletion affects Aspergillus flavus conidial surface proteins, architecture, and virulence
Ondippili Rudhra1, Hariharan Gnanam1, Sivaramakrishnan Sivaperumal2
1Department of Proteomics, Aravind Medical Research Foundation, Madurai, Tamil Nadu, India.
Abstract:
Melanin is an Aspergillus flavus cell wall component that provides chemical and physical protection to the organism. However, the molecular and biological mechanisms modulating melanin-mediated host-pathogen interaction in A. flavus keratitis are not well understood. This work aimed to compare the morphology, surface proteome profile, and virulence of melanized conidia (MC) and non-melanized conidia (NMC) of A. flavus. Kojic acid treatment inhibited melanin synthesis in A. flavus, and the conidial surface protein profile was significantly different in kojic acid-treated non-melanized conidia. Several cell wall-associated proteins and proteins responsible for oxidative stress, carbohydrate, and chitin metabolic pathways were found only in the formic acid extracts of NMC. Scanning electron microscopy (SEM) analysis showed the conidial surface morphology difference between the NMC and MC, indicating the role of melanin in the structural integrity of the conidial cell wall. The levels of calcofluor white staining efficiency were different, but there was no microscopic morphology difference in lactophenol cotton blue staining between MC and NMC. Evaluation of the virulence of MC and NMC in the Galleria mellonella model showed NMC was less virulent compared to MC. Our findings showed that the integrity of the conidial surface is controlled by the melanin layer. The alteration in the surface protein profile indicated that many surface proteins are masked by the melanin layer, and hence, melanin can modulate the host response by preventing the exposure of fungal proteins to the host immune defense system. The G. mellonella virulence assay also confirmed that the NMC were susceptible to host defense as in other Aspergillus pathogens. KEY POINTS: • l-DOPA melanin production was inhibited in A. flavus isolates by kojic acid, and for the first time, scanning electron microscopy (SEM) analysis revealed morphological differences between MC and NMC of A. flavus strains • Proteome profile of non-melanized conidia showed more conidial surface proteins and these proteins were mainly involved in the virulence, oxidative stress, and metabolism pathways • Non-melanized conidia of A. flavus strains were shown to be less virulent than melanised conidia in an in vivo virulence experiment with the G. melonella model.
Insights
Melanin in Aspergillus flavus protects the fungus, but non-melanized conidia show altered surface proteins and reduced virulence. Melanin masks fungal proteins, modulating host immune response in keratitis.
Area of Science:
- Mycology
- Medical Mycology
- Fungal Pathogenesis
Background:
- Melanin is a key Aspergillus flavus cell wall component conferring protection.
- Mechanisms of melanin-mediated host-pathogen interactions in A. flavus keratitis are poorly understood.
Purpose of the Study:
- To compare morphology, surface proteome, and virulence of melanized conidia (MC) and non-melanized conidia (NMC) of A. flavus.
- To elucidate the role of melanin in A. flavus conidial integrity and host interaction.
Main Methods:
- Inhibition of melanin synthesis using kojic acid.
- Scanning electron microscopy (SEM) for morphological analysis.
- Proteomic analysis of conidial surface proteins.
- Virulence assessment using the Galleria mellonella model.
Main Results:
- Kojic acid effectively inhibited melanin synthesis in A. flavus.
- SEM revealed distinct morphological differences between MC and NMC.
- NMC exhibited a significantly different surface proteome, with more exposed proteins involved in virulence and metabolism.
- NMC demonstrated reduced virulence compared to MC in the Galleria mellonella model.
Conclusions:
- The melanin layer is crucial for the structural integrity of A. flavus conidia.
- Melanin masks surface proteins, thereby modulating host immune responses.
- Non-melanized conidia are more susceptible to host defenses, indicating reduced virulence.
More Related Videos
12:29Live Imaging of Antifungal Activity by Human Primary Neutrophils and Monocytes in Response to A. fumigatus
Published on: April 19, 2017
09:21Inhibition of Aspergillus flavus Growth and Aflatoxin Production in Transgenic Maize Expressing the α-amylase Inhibitor from Lablab purpureus L.
Published on: February 15, 2019
Related Concept Videos
Pigmentation
Melanin occurs in two primary forms: eumelanin that provides black and brown pigment and pheomelanin that provides red color. Dark-skinned individuals produce more melanin than those with pale...
Changes in Skin Color: Clinical Perspectives
Albinism
Albinism is a genetic disorder that affects (completely or partially) the coloring of skin, hair, and eyes. The defect is primarily...
Skin Diseases and Disorders
Gram-positive Staphylococcus spp. and Streptococcus spp. are responsible for many of the most common skin infections. However, many...
Skin Cancer
Basal Cell Carcinoma (BCC): BCC is the most common type of skin cancer, accounting for about 80% of cases. It typically develops in...
Fungal Phylum Ascomycota
Antifungal Agents