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Effects of Ultra-Weak Fractal Electromagnetic Signals on Malassezia furfur
Pierre Madl1,2, Roberto Germano3, Alberto Tedeschi4
1Department of Biosciences & Medical Biology, University of Salzburg, A-5020 Salzburg, Austria.
Abstract:
Malassezia spp. are dimorphic, lipophilic fungi that are part of the normal human cutaneous commensal microbiome. However, under adverse conditions, these fungi can be involved in various cutaneous diseases. In this study, we analysed the effect of ultra-weak fractal electromagnetic (uwf-EMF) field exposure (12.6 nT covering 0.5 to 20 kHz) on the growth dynamics and invasiveness of M. furfur. The ability to modulate inflammation and innate immunity in normal human keratinocytes was also investigated. Using a microbiological assay, it was possible to demonstrate that, under the influence of uwf-EMF, the invasiveness of M. furfur was drastically reduced (d = 2.456, p < 0.001), while at the same time, its growth dynamic after 72 h having been in contact with HaCaT cells both without (d = 0.211, p = 0.390) and with (d = 0.118, p = 0.438) uwf-EM exposure, were hardly affected. Real-time PCR analysis demonstrated that a uwf-EMF exposure is able to modulate human-β-defensin-2 (hBD-2) in treated keratinocytes and at the same time reduce the expression of proinflammatory cytokines in human keratinocytes. The findings suggest that the underlying principle of action is hormetic in nature and that this method might be an adjunctive therapeutic tool to modulate the inflammatory properties of Malassezia in related cutaneous diseases. The underlying principle of action becomes understandable by means of quantum electrodynamics (QED). Given that living systems consist mainly of water and within the framework of QED, this water, as a biphasic system, provides the basis for electromagnetic coupling. The oscillatory properties of water dipoles modulated by weak electromagnetic stimuli not only affect biochemical processes, but also pave the way for a more general understanding of the observed nonthermal effects in biota.
Insights
Ultra-weak fractal electromagnetic fields significantly reduced the invasiveness of Malassezia furfur, a common skin fungus. This exposure also modulated inflammation and immunity in human keratinocytes, suggesting a potential adjunctive therapy for skin diseases.
Area of Science:
- Mycology
- Dermatology
- Biophysics
Background:
- Malassezia species are commensal fungi on human skin.
- Under certain conditions, Malassezia can cause various skin diseases.
- Understanding fungal-host interactions is crucial for treating cutaneous conditions.
Purpose of the Study:
- To investigate the effect of ultra-weak fractal electromagnetic (uwf-EMF) fields on Malassezia furfur.
- To assess the impact of uwf-EMF on fungal growth dynamics and invasiveness.
- To explore the modulation of human keratinocyte inflammation and innate immunity by uwf-EMF.
Main Methods:
- Microbiological assays were used to evaluate fungal invasiveness and growth.
- Real-time PCR was employed to analyze gene expression in keratinocytes.
- Exposure to ultra-weak fractal electromagnetic fields (12.6 nT, 0.5–20 kHz) was applied.
Main Results:
- Uwf-EMF exposure drastically reduced the invasiveness of Malassezia furfur.
- Fungal growth dynamics were largely unaffected by uwf-EMF exposure.
- Uwf-EMF modulated human beta-defensin-2 expression and reduced pro-inflammatory cytokines in keratinocytes.
Conclusions:
- Uwf-EMF exposure can inhibit Malassezia furfur invasiveness and modulate host immune responses.
- The findings suggest a hormetic effect, potentially applicable as an adjunctive therapy for Malassezia-related skin diseases.
- Quantum electrodynamics principles may explain the nonthermal effects of electromagnetic fields on biological systems.

