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蛋白质组学方法:利用与质谱联用的微流控系统寻找蛋白质生物标志物。

Proteomics Methodologies: The Search of Protein Biomarkers Using Microfluidic Systems Coupled to Mass Spectrometry.

作者信息

De Figueiredo Isabel, Bartenlian Bernard, Van der Rest Guillaume, Pallandre Antoine, Halgand Frédéric

机构信息

Institut de Chimie Physique, Université Paris Saclay, Avenue Jean Perrin, F91400 Orsay, France.

Centre des Nanosciences et Nanotechnologies, Université Paris Saclay, 10 Boulevard Thomas Gobert, F91120 Palaiseau, France.

出版信息

Proteomes. 2023 May 10;11(2):19. doi: 10.3390/proteomes11020019.

Abstract

Protein biomarkers have been the subject of intensive studies as a target for disease diagnostics and monitoring. Indeed, biomarkers have been extensively used for personalized medicine. In biological samples, these biomarkers are most often present in low concentrations masked by a biologically complex proteome (e.g., blood) making their detection difficult. This complexity is further increased by the needs to detect proteoforms and proteome complexity such as the dynamic range of compound concentrations. The development of techniques that simultaneously pre-concentrate and identify low-abundance biomarkers in these proteomes constitutes an avant-garde approach to the early detection of pathologies. Chromatographic-based methods are widely used for protein separation, but these methods are not adapted for biomarker discovery, as they require complex sample handling due to the low biomarker concentration. Therefore, microfluidics devices have emerged as a technology to overcome these shortcomings. In terms of detection, mass spectrometry (MS) is the standard analytical tool given its high sensitivity and specificity. However, for MS, the biomarker must be introduced as pure as possible in order to avoid chemical noise and improve sensitivity. As a result, microfluidics coupled with MS has become increasingly popular in the field of biomarker discovery. This review will show the different approaches to protein enrichment using miniaturized devices and the importance of their coupling with MS.

摘要

蛋白质生物标志物作为疾病诊断和监测的靶点,一直是深入研究的对象。事实上,生物标志物已被广泛用于个性化医疗。在生物样本中,这些生物标志物通常以低浓度存在,被生物复杂的蛋白质组(如血液)所掩盖,这使得它们的检测变得困难。由于需要检测蛋白质变体和蛋白质组复杂性,如化合物浓度的动态范围,这种复杂性进一步增加。开发能够同时预浓缩和鉴定这些蛋白质组中低丰度生物标志物的技术,是早期检测疾病的一种前沿方法。基于色谱的方法广泛用于蛋白质分离,但由于生物标志物浓度低,这些方法需要复杂的样品处理,因此不适用于生物标志物的发现。因此,微流控装置作为一种克服这些缺点的技术应运而生。在检测方面,质谱(MS)因其高灵敏度和特异性而成为标准的分析工具。然而,对于质谱分析,生物标志物必须尽可能纯净地引入,以避免化学噪声并提高灵敏度。因此,微流控技术与质谱联用在生物标志物发现领域越来越受欢迎。本文将展示使用小型化装置进行蛋白质富集的不同方法,以及它们与质谱联用的重要性。

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