Department of Biophysics, Faculty of Science, Cairo University, 12613 Giza, Egypt.
J Phys Chem B. 2024 Jun 6;128(22):5397-5406. doi: 10.1021/acs.jpcb.4c01517. Epub 2024 May 22.
The article correlates between symmetry breaking and phase transition. An analogy, extending from physics to biology, is known to exist between these two topics. Bacteriorhodopsin (bR) as a paradigm of membrane proteins has been used as a case study in the present work. The bR, as the sole protein embedded in what is called a purple membrane (PM), has attracted widespread interest in bionanotechnological applications. The lipids of PM have a crucial role in maintaining the crystal lattice of bR inside PM. For this reason, the present work has been concerned with elucidating the thermal phase transition properties of the PM lipids in orthogonal directions. The results indicated that the axial symmetry of bR exhibits considerable changes occurring at the thermal phase transition of lipids. These changes are brought by an anomaly observed in the time course of orthogonal electric responses during the application of thermal fields on PM. The observed anomaly may bear on symmetry breaking in bR occurring at the phase transition of lipids based on such analogy found between symmetry breaking and phase transition. Lipid-protein interactions may underlie the broken axial symmetry of bR at such lipid thermal transition of PM. Accordingly, thermally perturbed axial symmetry of bR may be of biological relevance relying on the essence of the crystal lattice of bR. Most importantly, a question has to be raised in the present study: Can bR, as a helical protein with broken axial symmetry, affect the symmetry breaking of helical light? This may be of potential technical applications based on a recent discovery that bR breaks the symmetry of helical light.
本文探讨了对称破缺与相变之间的关联。众所周知,这两个主题之间存在从物理学到生物学的类比。细菌视紫红质(bR)作为膜蛋白的范例,在本工作中被用作案例研究。bR 作为唯一嵌入所谓紫色膜(PM)中的蛋白质,在生物纳米技术应用中引起了广泛关注。PM 的脂质在维持 bR 在 PM 内部的晶格方面起着至关重要的作用。出于这个原因,本工作一直致力于阐明 PM 脂质在正交方向上的热相变特性。结果表明,bR 的轴向对称在脂质的热相变时表现出相当大的变化。这些变化是由在 PM 上施加热场时正交电响应的时间过程中观察到的异常引起的。观察到的异常可能与脂质相变时 bR 中的对称破缺有关,这是基于在对称破缺和相变之间发现的类比。脂质-蛋白质相互作用可能是 PM 中脂质热转变时 bR 断裂轴向对称的基础。因此,依赖于 bR 晶格的本质,bR 受到热干扰的轴向对称可能具有生物学相关性。最重要的是,本研究提出了一个问题:具有断裂轴向对称的螺旋蛋白 bR 是否会影响螺旋光的对称破缺?这可能基于 bR 打破螺旋光的对称性的最新发现具有潜在的技术应用。