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Proteomic and metabolomic profiling reveals the fungicidal mechanisms of Microsporum canis in response to methylene blue-mediated photodynamic therapy

作者:Gaoyuan Peng, Shulei Qin, Weilun Xu, Cunwei Cao, Kaisu Pan, Lan Huang, Liuwei Liao, Junmeng Zhou, Dongyan Zheng, Xinyu Zhang · 发表于:Frontiers in Microbiology · 年份:2026 · DOI:10.3389/fmicb.2025.1734090 · 被引用次数:1 · 研究领域:Photodynamic Therapy Research Studies、Nail Diseases and Treatments、Nonmelanoma Skin Cancer Studies

Background Microsporum canis is a primary causative agent of dermatophytosis. Its rising antifungal resistance necessitates the development of effective therapeutic alternatives. Although methylene blue-mediated photodynamic therapy (MB-PDT) is a promising strategy, a system-level understanding of its fungicidal mechanism is lacking. Methods An integrated multi-omics approach was employed, using data-independent acquisition (DIA) proteomics and untargeted metabolomics, to map the molecular response of clinical M. canis isolates to MB-PDT. Pathway enrichment analysis was performed to elucidate the key biological processes affected. Results MB-PDT induced multi-faceted molecular perturbations in M. canis . The treatment simultaneously disrupted membrane integrity by downregulating ergosterol biosynthesis (e.g., C4-methylsterol oxidase) and impaired the fungus’s antioxidant defenses by suppressing key enzymes such as glutathione S-transferase. Critically, the treatment suppressed secreted virulence factors essential for host invasion, including subtilisin-like protease 7. These disruptions led to a profound suppression of core biosynthetic machinery, with ribosome biogenesis and translation identified as the most significantly inhibited pathways. This resulted in a collapse of protein synthesis, energy production, and amino acid metabolism. Conclusion The results indicate that the efficacy of MB-PDT stems from a multi-target mechanism that simultaneously damages cellular structu...