Yin D C, Wakayama N I, Inatomi Y, Huang W D, Kuribayashi K
State Key Lab of Solidification and Processing, Northwestern Polytechnical University, Shaanxi, Xi'an, China.
Adv Space Res. 2003;32(2):217-23. doi: 10.1016/s0273-1177(03)90254-7.
Either a homogeneous or inhomogeneous magnetic field has been known to dampen the protein crystal growth. To date the mechanism is not clear. However, it was generally proposed that the magnetic field may dampen the convection in the solution, resulting in a reduced crystal growth rate and possibly a good crystal quality, similar to the case of protein crystal growth in space. To understand the mechanism of the magnetic field effect on protein crystal growth, further explorations on the magnetic field effect on protein solution, on the processes of crystal growth and dissolution, and on different crystallization (solution) systems, should be valuable. In this paper we present our recent efforts to study magnetic field effects on the dissolution processes of tetragonal lysozyme crystals under a strong magnetic field. A layer of oriented tetragonal lysozyme crystals was prepared under a temperature gradient and magnetic field, after that the crystals were dissolved by increasing the temperature of the solution. The lysozyme molecules will diffuse upwards due to the steep concentration gradient at the lower side of the cell caused by the dissolution. The evolution of the concentration in the solution was measured in-situ using a Mach-Zehnder interferometer. The results confirmed that the dissolution process of the crystals was slowed by the magnetic field. Judging from the concentration evolution versus time at different positions in the solution, we concluded that the apparent diffusion coefficient of lysozyme molecules was decreased by the magnetic field. The results were discussed using a suspended crystal model in the initial dissolution stage.
已知均匀或非均匀磁场会抑制蛋白质晶体生长。迄今为止,其机制尚不清楚。然而,一般认为磁场可能会抑制溶液中的对流,导致晶体生长速率降低,并可能获得良好的晶体质量,这与蛋白质在太空中晶体生长的情况类似。为了解磁场对蛋白质晶体生长的作用机制,进一步探索磁场对蛋白质溶液、晶体生长和溶解过程以及不同结晶(溶液)体系的影响将具有重要意义。在本文中,我们展示了近期研究强磁场下磁场对四方晶型溶菌酶晶体溶解过程影响的工作。在温度梯度和磁场作用下制备了一层取向的四方晶型溶菌酶晶体,之后通过升高溶液温度使晶体溶解。由于溶解导致细胞下侧存在陡峭的浓度梯度,溶菌酶分子将向上扩散。使用马赫 - 曾德尔干涉仪原位测量溶液中浓度的变化。结果证实磁场减缓了晶体的溶解过程。从溶液中不同位置浓度随时间的变化来看,我们得出磁场降低了溶菌酶分子的表观扩散系数。在初始溶解阶段,使用悬浮晶体模型对结果进行了讨论。