Chong P L, van der Meer B W, Thompson T E
Biochim Biophys Acta. 1985 Mar 14;813(2):253-65. doi: 10.1016/0005-2736(85)90240-8.
Using steady-state fluorescence polarization measurements, an isothermal pressure-induced phase transition was observed in dimyristoyl-L-alpha-phosphatidylcholine multilamellar vesicles containing perylene. The temperature-to-pressure equivalence, dT/dP, estimated from the phase transition pressure, P1/2, is about 22 K X kbar-1, which is comparable to values determined from diphenylhexatriene polarization (Chong, P.L.-G. and Weber, G. (1983) Biochemistry 22, 5544-5550). In addition, we have employed a new method, introduced in this paper, to calculate the rate of in-plane rotation (Rip) and the rate of out-of-plane rotation (Rop) of perylene in lipid bilayers. The effects of pressure and cholesterol on the rotational rates of perylene in two lipid bilayer systems have been examined. They are 1-palmitoyl-2-oleoyl-L-alpha-phosphatidylcholine (POPC) multilamellar vesicles (MLV) and 50 mol% cholesterol in POPC (MLV). Rop is smaller than Rip due to the fact that the out-of-plane rotation requires a larger volume change than the in-plane rotation. Cholesterol seems not to affect Rop significantly, but pressure causes a decrease in Rop by about a factor of three. In contrast, the effects of pressure and cholesterol on Rip are less straightforward. At 1 atm cholesterol increases Rip by a factor of about two. Similarly, in the absence of cholesterol 1.5 kbar pressure essentially triples Rip. However, if both cholesterol is added and pressure is applied, Rip decreases sharply. The possible interactions between cholesterol and perylene are discussed.
通过稳态荧光偏振测量,在含有苝的二肉豆蔻酰 - L-α - 磷脂酰胆碱多层囊泡中观察到了等温压力诱导的相变。根据相变压力P1/2估算的温度 - 压力当量dT/dP约为22 K×kbar⁻¹,这与通过二苯基己三烯偏振测定的值相当(Chong, P.L.-G.和Weber, G. (1983) Biochemistry 22, 5544 - 5550)。此外,我们采用了本文介绍的一种新方法来计算苝在脂质双层中的面内旋转速率(Rip)和面外旋转速率(Rop)。研究了压力和胆固醇对两种脂质双层体系中苝旋转速率的影响。它们是1 - 棕榈酰 - 2 - 油酰 - L-α - 磷脂酰胆碱(POPC)多层囊泡(MLV)以及POPC中50 mol%胆固醇(MLV)。由于面外旋转比面内旋转需要更大的体积变化,所以Rop小于Rip。胆固醇似乎对Rop没有显著影响,但压力会使Rop降低约三倍。相比之下,压力和胆固醇对Rip的影响则不那么直接。在1个大气压下,胆固醇使Rip增加约两倍。同样,在没有胆固醇的情况下,1.5 kbar的压力基本上使Rip增加两倍。然而,如果同时添加胆固醇并施加压力,Rip会急剧下降。文中讨论了胆固醇与苝之间可能的相互作用。