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毛细等电聚焦与自由或固定 pH 梯度在硅胶颗粒填充柱中。

Capillary isoelectric focusing with free or immobilized pH gradient in silica particles packed column.

机构信息

School of Pharmacy, Shanghai Jiao Tong University, Shanghai, 200240, China.

School of Pharmacy, Shanghai Jiao Tong University, Shanghai, 200240, China.

出版信息

Anal Chim Acta. 2019 Nov 4;1079:230-236. doi: 10.1016/j.aca.2019.06.013. Epub 2019 Jun 8.

DOI:10.1016/j.aca.2019.06.013
PMID:31387716
Abstract

The use of immobilized pH gradient (IPG) capillary isoelectric focusing (CIEF) was confirmed to be possible with packed capillaries. The success of this experiment was due to two key factors: first, the use of surface-confined atom transfer radical polymerization method led to an increase in active reaction sites on the surface of silica particles; second, the subsequent free radical reaction caused carrier ampholytes (CAs) to bond faster and firmer. Based on this scheme, both CIEF with free pH gradient and CIEF with IPG were performed in capillaries packed with 3 μm modified silica particles. In our online CIEF-UV platform, both reversible and irreversible adsorption of proteins was shown to be negligible. Four proteins were focused: cytochrome c (pI 10.2), myoglobin (pI 7.3), carbonic anhydrase (pI 5.9) and trypsin inhibitor (pI 4.5). The comparison of the two CIEF columns showed that the time required for focusing in the packed capillary with IPG is only increased by a factor of 1.5 compared to the packed capillary, giving complete focusing in less than 12 min at 400 V/cm. With the increment of the electric field (the maximum at 600 V/cm), the run time was continually decreasing in these packed capillaries while the peak shape was improving. The four proteins (pH 4.5-10.2) could be successfully separated in our online CIEF platform. Moreover, for the newly online CIEF platform, pressure-driven mobilization without an applied electric field was achieved in the packed capillary with immobilized pH gradient.

摘要

固定化 pH 梯度(IPG)毛细管等电聚焦(CIEF)在填充毛细管中被证实是可行的。该实验的成功归因于两个关键因素:首先,使用表面受限原子转移自由基聚合方法导致硅胶颗粒表面的活性反应位点增加;其次,随后的自由基反应导致载体两性电解质(CA)更快、更牢固地结合。基于该方案,在填充有 3 µm 改性硅胶颗粒的毛细管中分别进行了自由 pH 梯度 CIEF 和 IPG CIEF。在我们的在线 CIEF-UV 平台上,蛋白质的可逆和不可逆吸附均被证明可以忽略不计。聚焦了四种蛋白质:细胞色素 c(pI 10.2)、肌红蛋白(pI 7.3)、碳酸酐酶(pI 5.9)和胰蛋白酶抑制剂(pI 4.5)。两种 CIEF 柱的比较表明,与填充毛细管相比,带有 IPG 的填充毛细管聚焦所需的时间仅增加了 1.5 倍,在 400 V/cm 下不到 12 分钟即可完全聚焦。随着电场强度的增加(最大可达 600 V/cm),这些填充毛细管中的运行时间不断缩短,峰形不断改善。在我们的在线 CIEF 平台上可以成功分离这四种蛋白质(pH 4.5-10.2)。此外,对于新的在线 CIEF 平台,在带有固定化 pH 梯度的填充毛细管中实现了无需外加电场的压力驱动迁移。

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