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用于生物分子的多重质谱分析和成像的质量标记编码纳米界面。

Mass tag-encoded nanointerfaces for multiplexed mass spectrometric analysis and imaging of biomolecules.

机构信息

State Key Laboratory of Analytical Chemistry for Life Science, Chemistry and Biomedicine Innovation Center, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing 210023, P. R. China.

出版信息

Nanoscale. 2023 Feb 9;15(6):2529-2540. doi: 10.1039/d2nr06020e.

Abstract

Revealing multiple biomolecules in the physiopathological environment simultaneously is crucial in biological and biomedical research. Mass spectrometry (MS) features unique technical advantages in multiplexed and label-free analyses. However, owing to comparably low abundance and poor ionization efficiency of target biomolecules, direct MS profiling of these biological species or remains a challenge. An emerging route to solve this issue is to devise mass tag (MT)-encoded nanointerfaces which specifically convert the abundance or activity of biomolecules into amplified ion signals of mass tags, offering an ideal strategy for synchronous MS assaying and mapping of multiple targets in biofluids, cells and tissues. This review provides a thorough and organized overview of recent advances in MT-encoded nanointerfaces elaborately tailored for several practical applications in multiplexed MS bioanalysis and biomedical research. First, we start with elucidation of the structural characteristics and working principle of MT-encoded nanointerfaces in specific labeling and sensing of multiple biological targets. In addition, we further discuss the application scenarios of MT-encoded nanointerfaces particularly in multiplexed biomarker assays, cell analysis, and tissue imaging. Finally, the current challenges are pointed out and future prospects of these nanointerfaces in MS analysis are forecast.

摘要

同时揭示生理病理环境中的多种生物分子在生物和生物医学研究中至关重要。质谱(MS)在多路复用和无标记分析方面具有独特的技术优势。然而,由于目标生物分子的丰度相对较低且离子化效率较差,直接进行 MS 分析仍然具有挑战性。解决此问题的一种新兴方法是设计质量标记(MT)编码纳米界面,该界面特异性地将生物分子的丰度或活性转化为质量标记的放大离子信号,为同步 MS 分析和生物流体、细胞和组织中的多个靶标进行映射提供了理想策略。

本综述全面而系统地概述了精心设计的 MT 编码纳米界面在多路复用 MS 生物分析和生物医学研究中的几个实际应用中的最新进展。首先,我们从多个生物靶标特异性标记和传感的角度阐明了 MT 编码纳米界面的结构特征和工作原理。此外,我们还进一步讨论了 MT 编码纳米界面在多路复用生物标志物测定、细胞分析和组织成像中的应用场景。最后,指出了当前的挑战,并对这些纳米界面在 MS 分析中的未来前景进行了预测。

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