Instituto de Ciencias Físicas, Universidad Nacional Autónoma de México, Cuernavaca, Morelos, México.
Departamento de Fisicoquímica, Facultad de Química, Universidad Nacional Autónoma de México, Ciudad de México, México.
J Biomol Struct Dyn. 2022 Jul;40(11):5060-5068. doi: 10.1080/07391102.2020.1867640. Epub 2021 Jan 5.
Understanding, at the molecular level, the effect of AMPs on biological membranes is of crucial importance given the increasing number of multidrug-resistant bacteria. Being part of an ancient type of innate immunity system, AMPs have emerged as a potential solution for which bacteria have not developed resistance. Traditional antibiotics specifically act on biosynthetic pathways, while AMPs may directly destabilize the lipid membrane, but it is unclear how AMPs affect the membrane's stability. We performed multiscale molecular dynamics simulations to investigate the structural features leading to membrane pores formation on zwitterionic and anionic membranes by the antimicrobial peptide (AMP) Pandinin 2 (Pin2). Some experimental reports propose that Pin2 could form barrel-stave pores, while others suggest that it could form toroidal pores. Since there is no conclusive evidence of which type of pore is formed by Pin2 on bilayers, performing molecular dynamics simulations on these systems could shed some light on whether or not or what type of pore Pin2 forms on model membranes. Our results are focused on a detailed description of the pore formation by Pin2 in POPC and POPE:POPG membranes., which strongly suggest that Pin2 forms a toroidal pore and not a barrel-shaped pore; this type of pore also affects the membrane properties. In the process, a phospholipid remodeling in the POPE:POPG membrane takes place. Moreover, the pores formed by Pin2 indicate that they are selective for the chlorine ion. There are no previous ion selectivity reports for other AMPs with similar physicochemical properties, such as melittin and magainin.Communicated by Ramaswamy H. Sarma.
鉴于越来越多的多药耐药菌,从分子水平理解 AMP 对生物膜的影响至关重要。作为古老的先天免疫系统的一部分,AMP 作为一种细菌尚未产生耐药性的潜在解决方案而出现。传统抗生素专门作用于生物合成途径,而 AMP 可能直接破坏脂质膜,但 AMP 如何影响膜稳定性尚不清楚。我们进行了多尺度分子动力学模拟,以研究抗菌肽(AMP)Pandinin 2(Pin2)在两性离子和阴离子膜上形成膜孔的结构特征。一些实验报告提出 Pin2 可以形成桶状孔,而另一些则表明它可以形成环孔。由于没有确凿的证据表明 Pin2 在双层膜上形成哪种类型的孔,因此对这些系统进行分子动力学模拟可以阐明 Pin2 是否在模型膜上形成孔以及形成何种类型的孔。我们的结果侧重于详细描述 Pin2 在 POPC 和 POPE:POPG 膜中形成孔的过程,这强烈表明 Pin2 形成了环孔而不是桶状孔;这种类型的孔也会影响膜的性质。在此过程中,POPE:POPG 膜中的磷脂发生重排。此外,Pin2 形成的孔表明它们对氯离子具有选择性。以前没有其他具有相似物理化学性质的 AMP (如蜂毒素和magainin)的离子选择性报告。由 Ramaswamy H. Sarma 传达。