Briehl R W, Herzfeld J
Proc Natl Acad Sci U S A. 1979 Jun;76(6):2740-4. doi: 10.1073/pnas.76.6.2740.
The tactoidal state in systems containing long, rod-like molecules consists of partially aligned solute molecules in equilibrium with and at a concentration not much higher than that in the conjugate isotropic phase. Under the liquid lattice model of Flory [Proc. R. Soc. London Ser. A, (1956) 234, 73-89], as well as under other models, tactoid formation by molecules of fixed axial ratio depends on nonideality induced by excluded volumes; the process is wholly entropy driven and requires no direct interactions between rods. Many rod-like biological polymers exhibit reversible polymerization, so that axial ratio and length are not fixed. Polymerization and rod length will then not only induce nonideality, alignment, and phase separation, but will be affected by these. In this work these interrelations are treated under the model of Flory, modified to include a free energy of polymerization and to permit reversible changes in rod length. The primary conclusion is that, in contrast to the situation for fixed lengths, excluded volume-dependent nonideality alone does not suffice to induce a tactoidal phase separation. In the absence of attractions or repulsions between rods the anisotropic phase is highly concentrated. This phase only becomes tactoidal when a minimal level of repulsive interaction between rods is reached. Under this model, tactoid formation in systems such as deoxygenated hemoglobin S and tobacco mosaic virus depends on repulsive interactions or metastability or both. As a secondary result it is shown that rod length in the anisotropic phase is much greater than in the conjugate isotropic phase.
在含有长棒状分子的体系中,准胶体态由部分排列的溶质分子组成,这些分子与共轭各向同性相处于平衡状态,且其浓度并不比共轭各向同性相中的浓度高太多。根据弗洛里的液体晶格模型[《伦敦皇家学会学报》A辑,(1956年)234卷,73 - 89页]以及其他模型,具有固定轴比的分子形成准胶体取决于排除体积引起的非理想性;该过程完全由熵驱动,且棒状分子之间不需要直接相互作用。许多棒状生物聚合物表现出可逆聚合,因此轴比和长度不是固定的。聚合作用和棒长不仅会引起非理想性、排列和相分离,而且会受到这些因素的影响。在这项工作中,这些相互关系是在弗洛里模型的基础上进行处理的,该模型经过修改,包括了聚合自由能,并允许棒长发生可逆变化。主要结论是,与固定长度的情况相反,仅排除体积相关的非理想性不足以诱导准胶体相分离。在棒状分子之间不存在吸引或排斥作用时,各向异性相高度浓缩。只有当棒状分子之间的排斥相互作用达到最低水平时,该相才会变成准胶体。在这个模型下,诸如脱氧血红蛋白S和烟草花叶病毒等体系中的准胶体形成取决于排斥相互作用或亚稳性或两者。作为次要结果表明,各向异性相中的棒长比共轭各向同性相中的棒长得多。