Karal Mohammad Abu Sayem, Yamazaki Masahito
Integrated Bioscience Section, Graduate School of Science and Technology, Shizuoka University, Shizuoka 422-8529, Japan.
J Chem Phys. 2015 Aug 28;143(8):081103. doi: 10.1063/1.4930108.
Tension plays a vital role in pore formation in biomembranes, but the mechanism of pore formation remains unclear. We investigated the temperature dependence of the rate constant of constant tension (σ)-induced pore formation in giant unilamellar vesicles of lipid membranes using an experimental method we developed. By analyzing this result, we determined the activation energy (Ua) of tension-induced pore formation as a function of tension. A constant (U0) that does not depend on tension was found to contribute significantly to Ua. Analysis of the activation energy clearly indicated that the dependence of Ua on σ in the classical theory is correct, but that the classical theory of pore formation is not entirely correct due to the presence of U0. We can reasonably consider that U0 is a nucleation free energy to form a hydrophilic pre-pore from a hydrophobic pre-pore or a region with lower lateral lipid density. After obtaining U0, the evolution of a pre-pore follows a classical theory. Our data provide valuable information that help explain the mechanism of tension-induced pore formation in biomembranes and lipid membranes.
张力在生物膜孔形成过程中起着至关重要的作用,但其孔形成机制仍不清楚。我们使用自行开发的实验方法,研究了脂质膜的巨型单层囊泡中恒定张力(σ)诱导孔形成的速率常数与温度的关系。通过分析这一结果,我们确定了张力诱导孔形成的活化能(Ua)与张力的函数关系。发现一个不依赖于张力的常数(U0)对Ua有显著贡献。对活化能的分析清楚地表明,经典理论中Ua对σ的依赖性是正确的,但由于存在U0,经典的孔形成理论并不完全正确。我们可以合理地认为,U0是从疏水预孔或横向脂质密度较低的区域形成亲水性预孔的成核自由能。获得U0后,预孔的演化遵循经典理论。我们的数据提供了有价值的信息,有助于解释生物膜和脂质膜中张力诱导孔形成的机制。