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首页> 外文期刊>Biochimica et biophysica acta. Biomembranes >Disruption of Saccharomyces cerevisiae by Plantaricin 149 and investigation of its mechanism of action with biomembrane model systems.
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Disruption of Saccharomyces cerevisiae by Plantaricin 149 and investigation of its mechanism of action with biomembrane model systems.

机译:Plant菌素149对啤酒酵母的破坏作用及其在生物膜模型系统中的作用机理研究。

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The action of a synthetic antimicrobial peptide analog of Plantaricin 149 (Pln149a) against Saccharomyces cerevisiae and its interaction with biomembrane model systems were investigated. Pln149a was shown to inhibit S. cerevisiae growth by more than 80% in YPD medium, causing morphological changes in the yeast wall and remaining active and resistant to the yeast proteases even after 24 h of incubation. Different membrane model systems and carbohydrates were employed to better describe the Pln149a interaction with cellular components using circular dichroism and fluorescence spectroscopies, adsorption kinetics and surface elasticity in Langmuir monolayers. These assays showed that Pln149a does not interact with either mono/polysaccharides or zwitterionic LUVs, but is strongly adsorbed to and incorporated into negatively charged surfaces, causing a conformational change in its secondary structure from random-coil to helix upon adsorption. From the concurrent analysis of Pln149a adsorption kinetics and dilatational surface elasticity data, we determined that 2.5 muM is the critical concentration at which Pln149a will disrupt a negative DPPG monolayer. Furthermore, Pln149a exhibited a carpet-like mechanism of action, in which the peptide initially binds to the membrane, covering its surface and acquiring a helical structure that remains associated to the negatively charged phospholipids. After this electrostatic interaction, another peptide region causes a strain in the membrane, promoting its disruption.
机译:研究了合成抑菌肽149(Pln149a)对酿酒酵母的作用及其与生物膜模型系统的相互作用。 Pln149a已显示在YPD培养基中抑制酿酒酵母的生长超过80%,甚至在孵育24小时后,也会引起酵母壁的形态变化,并保持活性并对酵母蛋白酶具有抗性。使用不同的膜模型系统和碳水化合物,利用圆二色性和荧光光谱,Langmuir单层中的吸附动力学和表面弹性更好地描述了Pln149a与细胞组分的相互作用。这些测定表明,Pln149a既不与单糖/多糖也不与两性离子LUV相互作用,但被强烈吸附到带负电荷的表面并结合到其中,从而导致其二级结构在吸附时从无规卷曲变为螺旋状构象变化。通过同时分析Pln149a吸附动力学和膨胀表面弹性数据,我们确定2.5μM是Pln149a破坏负DPPG单层的临界浓度。此外,Pln149a表现出类似地毯的作用机理,其中肽最初与膜结合,覆盖其表面并获得螺旋结构,该螺旋结构仍与带负电的磷脂缔合。在这种静电相互作用之后,另一个肽区域在膜中引起应变,从而促进其破坏。

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