Kado Takehiro, Jordan Jake, Freundlich Joel S, Siegrist M Sloan, Morita Yasu S
Department of Biology, Missouri State University, 901 South National Avenue, Springfield, MO 65897.
Department of pharmacology, Physiology, and Neuroscience, New Jersey Medical School, Rutgers University, Newark, NJ 07103.
bioRxiv. 2025 Aug 5:2025.08.05.668640. doi: 10.1101/2025.08.05.668640.
The mycomembrane of mycobacteria, composed primarily of long-chain mycolic acids, is critical for cell survival, structural integrity, and resistance to environmental stress, yet its underlying synthesis mechanisms remain incompletely understood. This study investigates the role of Ag85A, a key enzyme in mycomembrane synthesis, in regulating plasma membrane domains and cell envelope organization in . Using Δ deletion mutants, we combined microscopy, biochemical assays, thin-layer chromatography, and lipid analysis to evaluate changes in membrane structure, chemical accumulation, and lipid composition. deletion leads to altered plasma membrane domain organization, increased chemical accumulation, changes in cell envelope lipid composition. Unexpectedly, lipid analysis revealed accumulation-not depletion-of mycolic acids in the mutant, suggesting that increased permeability is not directly due to mycolic acid loss. These findings highlight a novel link between mycomembrane composition and plasma membrane domain stability. Our study not only advances understanding of mycobacterial cell envelope architecture but also identifies potential targets for enhancing drug penetration in resistant mycobacterial infections.
分枝杆菌的霉菌膜主要由长链分枝菌酸组成,对细胞存活、结构完整性和抗环境应激至关重要,但其潜在的合成机制仍未完全了解。本研究调查了霉菌膜合成中的关键酶Ag85A在调节 中质膜结构域和细胞包膜组织方面的作用。使用Δ缺失突变体,我们结合显微镜检查、生化分析、薄层色谱和脂质分析来评估膜结构、化学物质积累和脂质组成的变化。缺失导致质膜结构域组织改变、化学物质积累增加、细胞包膜脂质组成变化。出乎意料的是,脂质分析显示突变体中分枝菌酸积累而非消耗,这表明通透性增加并非直接由于分枝菌酸损失。这些发现突出了霉菌膜组成与质膜结构域稳定性之间的新联系。我们的研究不仅推进了对分枝杆菌细胞包膜结构的理解,还确定了增强耐药分枝杆菌感染中药物渗透的潜在靶点。