返回
Mobile Affinity Sorbent Chromatography
DOI:10.1021/acs.analchem.7b03117.png)
摘要
En 中文
The objective in routine analyses is generally to determine a small number of analytes. With samples containing similar to 10(3) or more components there will be insufficient peak capacity to resolve analytes from nonanalytes. This issue was addressed herein through a new type of separation mechanism in which small groups of targeted analytes are bound with high affinity to a soluble analyte-sequestering transport phase (ASTP) composed of a similar to 25 nm Stokes radius hydrophilic polymer core (HPC). When introduced into a 30 nm pore diameter size-exclusion chromatography (SEC) column, ASTP/analyte complexes elute within minutes, together, unretained, and relatively pure in the first chromatographic peak. Nonanalytes, in contrast, enter pore matrices of the packing material, are retarded in elution velocity, and are eluted later, separated from analytes. Fabrication of ASTPs was achieved by covalently coupling an antibody or some other affinity selector to a high molecular weight HPC. Beyond sequestering analytes, the function of ASTPs is to act as a molecular weight shifting agent, conveying an effective molecular weight to analytes that is much larger than that of nonanalytes and causing them to elute in the SEC void volume. This mode of separation is referred to as mobile affinity sorbent chromatography (MASC). Subsequent to their purification, ASTP/analyte complexes were detected by fluorescence spectrometry.
Keyword:
SIZE-EXCLUSION CHROMATOGRAPHY
PROTEIN-G
STATIONARY-PHASE
ANTIBODY
IMMUNOASSAY
BINDING
PURIFICATION
SELECTIVITY
RETENTION
AI总结
对已上传原文的论文进行重点信息的提取,主要内容包括:简要概述、研究摘要、背景介绍、关键亮点、图文解析、展望与总结。
期刊
IF:
6.7
论文数:
4.7W
被引数:
15.9W
机构
引用论文
Electrochemical detection of a single cytomegalovirus at an ultramicroelectrode and its antibody anchoring在超微电极上电化学检测单个巨细胞病毒及其抗体锚定
Tailoring the separation selectivity of metal complexes and organometallic compounds resolved by capillary electrophoresis using auxiliary separation processes
ELECTROPHORESIS
IF2.5

