Department of Chemistry, Clemson University, Biosystems Research Complex, Clemson, SC, USA.
School of Materials Science and Engineering, Clemson University, Clemson, SC, USA.
J Sep Sci. 2018 Mar;41(5):1063-1073. doi: 10.1002/jssc.201701063. Epub 2018 Jan 16.
A new, trilobal-shaped capillary-channeled polymer fiber is under development to address the issues of poor A-term performance of the previous eight-channeled form. The trilobal geometry should provide better packing homogeneity due to the fewer potential orientations of the symmetric fiber geometry. Comparisons of separation efficiency and peak shape were made between the two fiber shapes through several dynamic parameters. Column hydrodynamics were investigated with two marker compounds, uracil and bovine serum albumin, with van Deemter plots of those two compounds revealing differences in the packing qualities between the different fiber shapes. Parametric fitting to the van Deemter, Knox, and Giddings equations provides insights into the column physical structures. Separation quality for both shapes was evaluated across differences in fiber packing density, gradient rate, and mobile phase linear velocity for the reversed phase separation of a four protein mixture, containing ribonuclease A, cytochrome c, lysozyme, and myoglobin. The results of this study lay the ground work for future efforts in the use of trilobal fibers for the separation of biomacromolecules.
一种新型的三叶形毛细管通道聚合物纤维正在开发中,以解决之前的八通道形式 A 项性能差的问题。三叶形几何形状由于对称纤维几何形状的潜在取向较少,因此应该提供更好的填充均匀性。通过几个动态参数对两种纤维形状的分离效率和峰形进行了比较。用两种标记化合物尿嘧啶和牛血清白蛋白研究了柱流动力学,这两种化合物的 van Deemter 图揭示了不同纤维形状之间的填充质量差异。对 van Deemter、Knox 和 Giddings 方程的参数拟合提供了对柱物理结构的深入了解。对于两种形状,在纤维填充密度、梯度速率和流动相线性速度的差异下,对包含核糖核酸酶 A、细胞色素 c、溶菌酶和肌红蛋白的四种蛋白质混合物的反相分离进行了分离质量评估。本研究的结果为未来使用三叶形纤维分离生物大分子奠定了基础。