Molecular Mechanisms Underlying Atopic Dermatitis: The Barrier-Lipid-Mycobiome Axis: Malassezia is lipid-dependent and utilizes components of cutaneous sebum via lipases and phospholipases. This process produces free fatty acids and other lipid metabolites, which can have an irritant or immunomodulatory effect when the skin barrier is compromised. In atopic scalp and neck dermatitis, reduced levels of long-chain, barrier-relevant ceramides—including esterified ω-hydroxyacyl sphingosines—have been detected. This gives rise to a possible feedback loop: recognition by the innate immune system. Malassezia components are recognized by, among others: TLR2 and TLR4, Dectin-1 and Dectin-2, Mincle, mannose receptors, complement receptors, and presumably the NLRP3 inflammasome. The cells affected include keratinocytes, dendritic cells, monocytes, macrophages, and Langerhans cells. Malassezia can thus trigger both Type 2 and Type 17 inflammation.
Th17 axis: Malassezia induces the differentiation or activation of Th17 cells via dendritic cells and IL-23, resulting in: IL-17A and IL-17F, IL-22, recruitment of neutrophils, and induction of antimicrobial peptides. This response is fundamentally part of the regulatory antifungal immune response. However, in the presence of a barrier defect, it can exacerbate cutaneous inflammation. Experimentally, Malassezia has been shown to induce a Type 17 response that, on the one hand, supports fungal control but, on the other hand, exacerbates eczematous inflammation.