Ito Y, Clary R, Powell J, Knight M, Finn T M
Bioseparation Technology Laboratory, Biochemistry and Biophysics Center, National Heart, Lung, and Blood Institute, National Institutes of Health, Bethesda, MD 20892, USA.
J Chromatogr A. 2009 May 8;1216(19):4193-200. doi: 10.1016/j.chroma.2008.10.126. Epub 2008 Nov 13.
The original spiral tube support (STS) assembly is improved by changing the shape of the tubing, with 1-cm presses perpendicularly along the length. This modification interrupts the laminar flow of the mobile phase. The tubing in the four return grooves to the center of the rotor is flattened by a specially made pressing tool to increase the number of spiral layers and decrease the dead space volume, thus increasing the column efficiency. The performance of this spiral tube assembly was tested in separations of dipeptides and proteins with suitable polar two-phase solvent systems. The results revealed that the present system yields high partition efficiency with a satisfactory level of stationary phase retention in a short elution time. The present high-speed counter-current chromatographic (HSCCC) system will be efficiently applied to a broad spectrum of two-phase solvent systems including aqueous-aqueous polymer phase systems (TPAS) which are used for separation of biopolymers such as proteins and nucleic acids.
通过改变管道形状对原始螺旋管支撑(STS)组件进行了改进,沿长度方向垂直施加1厘米的压力。这种改进中断了流动相的层流。使用特制的压制工具将通向转子中心的四个回流槽中的管道压扁,以增加螺旋层数并减小死体积,从而提高柱效。在使用合适的极性两相溶剂系统分离二肽和蛋白质时,对这种螺旋管组件的性能进行了测试。结果表明,本系统在短洗脱时间内具有较高的分配效率和令人满意的固定相保留水平。本高速逆流色谱(HSCCC)系统将有效地应用于广泛的两相溶剂系统,包括用于分离蛋白质和核酸等生物聚合物的水-水聚合物相系统(TPAS)。