Zhang Yan-Liang, Frangos John A, Chachisvilis Mirianas
La Jolla Bioengineering Institute, CA 92037, USA.
Biochem Biophys Res Commun. 2006 Sep 1;347(3):838-41. doi: 10.1016/j.bbrc.2006.06.152. Epub 2006 Jul 5.
The precise molecular mechanisms by which cells transduce a mechanical stimulus into an intracellular biochemical response have not yet been established. Here, we show for the first time that the fluorescence emission of an environment-sensitive membrane probe Laurdan is modulated by mechanical strain of the lipid bilayer membrane. We have measured fluorescence emission of Laurdan in phospholipid vesicles of 30, 50, and 100 nm diameter to show that osmotically induced membrane tension leads to an increase in polarity (hydration depth) of the phospholipid bilayer interior. Our data indicate that the general polarization of Laurdan emission is linearly dependent on membrane tension. We also show that higher membrane curvature leads to higher hydration levels. We anticipate that the proposed method will facilitate future studies of mechanically induced changes in physical properties of lipid bilayer environment both in vitro and in vivo.
细胞将机械刺激转化为细胞内生化反应的确切分子机制尚未明确。在此,我们首次表明,环境敏感型膜探针劳丹(Laurdan)的荧光发射会受到脂质双分子层膜机械应变的调节。我们测量了劳丹在直径为30、50和100纳米的磷脂囊泡中的荧光发射,结果表明,渗透压诱导的膜张力会导致磷脂双分子层内部的极性(水化深度)增加。我们的数据表明,劳丹发射的总体极化与膜张力呈线性相关。我们还表明,更高的膜曲率会导致更高的水化水平。我们预计,所提出的方法将有助于未来对体外和体内脂质双分子层环境物理性质的机械诱导变化进行研究。