Department of Physics, Tampere University of Technology, P. O. Box 692, FI- 33101 Tampere, Finland.
Department of Physics, Tampere University of Technology, P. O. Box 692, FI- 33101 Tampere, Finland; Department of Physics, POB 64, FI-00014 University of Helsinki, Finland.
Biochim Biophys Acta Biomembr. 2017 May;1859(5):870-878. doi: 10.1016/j.bbamem.2017.01.033. Epub 2017 Jan 28.
Extracellular and cytosolic leaflets in cellular membranes are distinctly different in lipid composition, yet they contribute together to signaling across the membranes. Here we consider a mechanism based on long-chain gangliosides for coupling the extracellular and cytosolic membrane leaflets together. Based on atomistic molecular dynamics simulations, we find that long-chain GM1 in the extracellular leaflet exhibits a strong tendency to protrude into the opposing bilayer leaflet. This interdigitation modulates the order in the cytosolic monolayer and thereby strengthens the interaction and coupling across a membrane. Coarse-grained simulations probing longer time scales in large membrane systems indicate that GM1 in the extracellular leaflet modulates the phase behavior in the cytosolic monolayer. While short-chain GM1 maintains phase-symmetric bilayers with a strong membrane registration effect, the situation is altered with long-chain GM1. Here, the significant interdigitation induced by long-chain GM1 modulates the behavior in the cytosolic GM1-free leaflet, weakening and slowing down the membrane registration process. The observed physical interaction mechanism provides a possible means to mediate or foster transmembrane communication associated with signal transduction.
细胞膜的细胞外叶和胞质叶在脂质组成上有明显的不同,但它们共同促进了跨膜信号转导。在这里,我们考虑了一种基于长链神经节苷脂的机制,将细胞外叶和胞质叶连接在一起。基于原子分子动力学模拟,我们发现细胞外叶中的长链 GM1 具有强烈的倾向突出到对面的双层叶中。这种交错调节了胞质单层的有序性,从而加强了跨膜的相互作用和耦合。在大膜系统中探测更长时间尺度的粗粒模拟表明,细胞外叶中的 GM1 调节胞质单层的相行为。虽然短链 GM1 保持具有强膜注册效应的相对称双层,但长链 GM1 的情况发生了变化。在这里,长链 GM1 诱导的显著交错调节了胞质 GM1 无叶中的行为,削弱并减缓了膜注册过程。观察到的物理相互作用机制为介导或促进与信号转导相关的跨膜通讯提供了一种可能的手段。