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Wasker, M.

Publications and source records attributed to Wasker, M..

2 recordsLinked to original sources

Stearic acid enhances membrane fluidization and peptidoglycan stiffness to promote the stability of Gram-positive bacteria

Saturated fatty acids such as stearic acid (SA) can exhibit both antimicrobial and growth-promoting effects on bacteria, depending on their concentration and chemical structure. However, the physical properties of the bacterial cell envelope in response to such molecules remain under-explored compared to their biochemical pathways. In this study, a comprehensive investigation is presented on the interaction of SA with the Gram-positive bacterium, Staphylococcus epider-midis (S. epi). SA alters bacterial growth, reflected in a higher maximum specific growth rate, a shorter lag phase, and an extended exponential phase, consistent with a prebiotic effect. Using fluorescence correlation spectroscopy and fluorescence lifetime imaging microscopy, we show that SA incorporation leads to significant fluidization of the lipid membrane, characterized by enhanced lateral diffusion and reduced membrane viscosity. Coarse-grained molecular dynamics (CG-MD) simulations demonstrate spontaneous insertion of SA into the membrane and a significant increase in mean-square displacement after insertion, supporting our experimental observations. Importantly, atomic force microscopy measurements show an increase in cell-envelope stiffness, reflected by a higher Youngs modulus which can be attributed to modulations in the glycan-peptide linkage density based on earlier studies that correlate stiffness changes to peptidoglycan (PG) crosslinking in Gram-positive strains [1]. These results provide direct evidence linking membrane fluidization induced by SA and increased cell wall stiffness due to transport modifications in the membrane mediated PG synthesis pathways to enhance bacterial cell viability.

biophysics↗

12-Hydroxystearic acid induces epidermal keratinocytes to secrete antimicrobial peptides that are potent inhibitors of viral infection.

Epidermal keratinocytes produce antimicrobial peptides (AMPs) that serve as a crucial component of the skins innate immune barrier. These peptides effectively target a broad spectrum of pathogenic microorganisms while preserving commensal microbiota essential for skin barrier homeostasis and overall skin health. Regulating the release of these AMPs presents a promising approach to enhancing the skin barriers defense mechanisms with minimal side effects. We have identified 12-hydroxystearic acid (12-HSA) as a potent stimulator of AMP secretion from primary epidermal keratinocytes. Mechanistic investigations revealed that, akin to bacterial stimulation, 12-HSA induces AMP release through the downregulation of caspase-8, which subsequently activates the inflammasome. Notably, we discovered that 12-HSA mediates caspase-8 downregulation via the acute activation of DNA methyltransferase 3A (DNMT3A), leading to transcriptional silencing of the caspase-8 locus. Importantly, 12-HSA is widely utilized in the cosmetic industry for its several skin beneficial properties including hydration and emolliency. Our findings suggest that this compound can be leveraged to enhance innate immune defenses in the skin, effectively mobilizing stored AMPs from keratinocytes to counteract microbial threats. This discovery highlights the potential for 12-HSA as a novel agent in dermatological applications aimed at fortifying skin barrier immunity.

cell biology↗