Atia Lior, Givli Sefi
Faculty of Mechanical Engineering, Technion, , Haifa 32000, Israel.
J R Soc Interface. 2014 Mar 26;11(95):20131207. doi: 10.1098/rsif.2013.1207. Print 2014 Jun 6.
Recent experimental studies provide evidence for the existence of a spatially non-uniform temperature field in living cells and in particular in their plasma membrane. These findings have led to the development of a new and exciting field: thermal biology at the single-cell level. Here, we examine theoretically a specific aspect of this field, i.e. how temperature gradients at the single-cell level affect the phase behaviour and geometry of heterogeneous membranes. We address this issue by using the Onsager reciprocal relations combined with a simple model for a binary lipid mixture. We demonstrate that even small temperature variations along the membrane may introduce intriguing phenomena, such as phase separation above the critical temperature and unusual shape response. These results also suggest that the shape of a membrane can be manipulated by dynamically controlling the temperature field in its vicinity. The effects of intramembranous temperature gradients have never been studied experimentally. Thus, the predictions of the current contribution are of a somewhat speculative nature. Experimental verification of these results could mark the beginning of a new line of research in the field of biological membranes. We report our findings with the hope of inspiring others to perform such experiments.
最近的实验研究为活细胞尤其是其质膜中存在空间不均匀温度场提供了证据。这些发现催生了一个全新且令人兴奋的领域:单细胞水平的热生物学。在此,我们从理论上研究该领域的一个特定方面,即单细胞水平的温度梯度如何影响异质膜的相行为和几何形状。我们通过将昂萨格互易关系与二元脂质混合物的简单模型相结合来解决这个问题。我们证明,即使沿膜的温度变化很小,也可能引发有趣的现象,如高于临界温度时的相分离和异常的形状响应。这些结果还表明,可以通过动态控制膜附近的温度场来操纵膜的形状。膜内温度梯度的影响从未有过实验研究。因此,当前研究的预测在一定程度上具有推测性。这些结果的实验验证可能标志着生物膜领域新研究方向的开端。我们报告我们的发现,希望能激励其他人开展此类实验。