Department of Chemical, Biological & Macromolecular Sciences , S. N. Bose National Centre for Basic Sciences , Block JD, Sector III , Salt Lake, Kolkata 700106 , India.
Solid State Physics Division , Bhabha Atomic Research Centre , Mumbai 400085 , India.
Langmuir. 2019 Apr 2;35(13):4682-4692. doi: 10.1021/acs.langmuir.9b00043. Epub 2019 Mar 12.
The maintenance of cell membrane fluidity is of critical importance for various cellular functions. At lower temperatures when membrane fluidity decreases, plants and cyanobacteria react by introducing unsaturation in the lipids, so that the membranes return to a more fluidic state. To probe how introduction of unsaturation leads to reduced membrane fluidity, a model cationic lipid dioctadecyldimethylammonium bromide (DODAB) has been chosen, and the effects of an unsaturated lipid monoolein (MO) on the structural dynamics and phase behavior of DODAB have been monitored by quasielastic neutron scattering and time-resolved fluorescence measurements. In the coagel phase, fluidity of the lipid bilayer increases significantly in the presence of MO relative to pure DODAB vesicles and becomes manifest in significantly enhanced dynamics of the constituent lipids along with faster hydration and orientational relaxation dynamics of a fluorophore. On the contrary, MO restricts both lateral and internal motions of the lipid molecules in the fluid phase (>330 K), which is consistent with relatively slow hydration and orientational relaxation dynamics of the fluorophore embedded in the mixed lipid bilayer. The present study illustrates how incorporation of an unsaturated lipid at lower temperatures (below the phase transition) assists the model lipid (DODAB) in regulating fluidity via enhancement of dynamics of the constituent lipids.
细胞膜流动性的维持对于各种细胞功能至关重要。在温度较低、膜流动性降低时,植物和蓝藻会通过在脂质中引入不饱和键来做出反应,从而使膜恢复到更流动的状态。为了探究不饱和键的引入如何导致膜流动性降低,选择了模型阳离子脂质二油酰基二甲基铵溴化物(DODAB),并通过准弹性中子散射和时间分辨荧光测量监测了不饱和脂质单油酸甘油酯(MO)对 DODAB 的结构动力学和相行为的影响。在凝聚凝胶相中,与纯 DODAB 囊泡相比,MO 的存在使脂质双层的流动性显著增加,并表现为组成脂质的动力学显著增强,以及荧光团的水合和取向弛豫动力学加快。相反,MO 在流体相(>330 K)中限制了脂质分子的侧向和内部运动,这与嵌入混合脂质双层中的荧光团的相对缓慢的水合和取向弛豫动力学一致。本研究说明了在较低温度(低于相变温度)下掺入不饱和脂质如何通过增强组成脂质的动力学来帮助模型脂质(DODAB)调节流动性。