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Sensitive, High-Throughput, and Robust Trapping-Micro-LC-MS Strategy for the Quantification of Biomarkers and Antibody Biotherapeutics

机译:用于量化生物标志物和抗体生物治疗方法的敏感,高通量和鲁棒俘获微型LC-MS策略

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摘要

For LC-MS-based targeted quantification of biotherapeutics and biomarkers in clinical and pharmaceutical environments, high sensitivity, high throughput, and excellent robustness are all essential but remain challenging. For example, though nano-LC-MS has been employed to enhance analytical sensitivity, it falls short because of its low loading capacity, poor throughput, and low operational robustness. Furthermore, high chemical noise in protein bioanalysis typically limits the sensitivity. Here we describe a novel trapping-micro-LC-MS (T-mu LC-MS) strategy for targeted protein bioanalysis, which achieves high sensitivity with exceptional robustness and high throughput. A rapid, high-capacity trapping of biological samples is followed by mu LC-MS analysis; dynamic sample trapping and cleanup are performed using pH, column chemistry, and fluid mechanics separate from the mu LC-MS analysis, enabling orthogonality, which contributes to the reduction of chemical noise and thus results in improved sensitivity. Typically, the selective-trapping and -delivery approach strategically removes 85% of the matrix peptides and detrimental components, markedly enhancing sensitivity, throughput, and operational robustness, and narrow-window-isolation selected-reaction monitoring further improves the signal-to-noise ratio. In addition, unique LC-hardware setups and flow approaches eliminate gradient shock and achieve effective peak compression, enabling highly sensitive analyses of plasma or tissue samples without band broadening. In this study, the quantification of 10 biotherapeutics and biomarkers in plasma and tissues was employed for method development. As observed, a significant sensitivity gain (up to 25-fold) compared with that of conventional LC-MS was achieved, although the average run time was only 8 min/sample. No appreciable peak deterioration or loss of sensitivity was observed after 1500 injections of tissue and plasma samples. The developed method enabled, for the first time, ultrasensitive LC-MS quantification of low levels of a monoclonal antibody and antigen in a tumor and cardiac troponin I in plasma after brief cardiac ischemia. This strategy is valuable when highly sensitive protein quantification in large sample sets is required, as is often the case in typical biomarker validation and pharmaceutical investigations of antibody therapeutics.
机译:对于基于LC-MS的临床和制药环境的靶向定量的生物治疗和生物标志物,高灵敏度,高吞吐量和优异的鲁棒性都是必不可少的,但保持挑战性。例如,虽然已采用纳米LC-MS来增强分析灵敏度,但由于其低负载能力,吞吐量差和低运行鲁棒性,它短缺。此外,蛋白质生物分析中的高化学噪声通常限制灵敏度。在这里,我们描述了一种用于靶向蛋白生物分析的新型捕获微型LC-MS(T-MU LC-MS)策略,其具有高度鲁棒性和高吞吐量的高灵敏度。一种快速,高容量的生物样品捕获之后是Mu LC-MS分析;使用pH,柱化学和从Mu LC-MS分析分离的流体力学进行动态样品捕获和清洁,从而实现正交性,这有助于降低化学噪声,从而导致改善的灵敏度。通常,选择性捕获和 - 发货方式策略性地删除& 85%的基质肽和有害组分,显着提高灵敏度,产量和操作鲁棒性,并且窄窗隔离选择的反应监测进一步提高了信噪比。此外,独特的LC-Hardment设置和流动方法消除了梯度休克并实现了有效的峰值压缩,从而实现了高敏感的等离子体或组织样品的速度分析,而无带宽度。在该研究中,采用血浆和组织中10个生物治疗剂和生物标志物的定量进行方法开发。如图所示,实现了与常规LC-MS相比的显着灵敏度增益(高达25倍),尽管平均运行时间仅为8分钟/样品。在&gt之后,观察到没有可明显的峰值劣化或敏感性丧失。 1500种组织和等离子体样品。在短暂的心脏缺血后,首次启用开发方法,是第一次,在肿瘤和心脏肌钙蛋白I中的肿瘤和心肌肌钙蛋白I中的低水平抗体和抗原的定量。当需要大型样品套装中的高敏感蛋白质量化时,该策略是有价值的,因为典型的生物标志物验证和抗体治疗药物的药物研究通常是常用的情况。

著录项

  • 来源
    《Analytical chemistry》 |2018年第3期|共11页
  • 作者单位

    Univ Buffalo State Univ New York Dept Pharmaceut Sci Buffalo NY 14214 USA;

    Univ Buffalo State Univ New York Dept Pharmaceut Sci Buffalo NY 14214 USA;

    Univ Buffalo State Univ New York Dept Pharmaceut Sci Buffalo NY 14214 USA;

    Univ Buffalo State Univ New York Dept Pharmaceut Sci Buffalo NY 14214 USA;

    Univ Buffalo State Univ New York Dept Pharmaceut Sci Buffalo NY 14214 USA;

    Univ Buffalo State Univ New York Dept Pharmaceut Sci Buffalo NY 14214 USA;

    Univ Buffalo State Univ New York Dept Pharmaceut Sci Buffalo NY 14214 USA;

    Western New York Dept Vet Affairs Med Ctr Div Cardiovasc Med Buffalo NY 14203 USA;

    Western New York Dept Vet Affairs Med Ctr Div Cardiovasc Med Buffalo NY 14203 USA;

    Univ Buffalo State Univ New York Dept Pharmaceut Sci Buffalo NY 14214 USA;

    Thermo Sci San Jose CA 95134 USA;

    Thermo Sci San Jose CA 95134 USA;

    Thermo Sci San Jose CA 95134 USA;

    Roche Innovat Ctr Basel Roche Pharmaceut Res &

    Early Dev CH-4070 Basel Switzerland;

    Roche Innovat Ctr Basel Roche Pharmaceut Res &

    Early Dev CH-4070 Basel Switzerland;

    Roche Innovat Ctr New York Roche Pharmaceut Res &

    Early Dev New York NY 10016 USA;

    Roche Innovat Ctr New York Roche Pharmaceut Res &

    Early Dev New York NY 10016 USA;

    Univ Buffalo State Univ New York Dept Pharmaceut Sci Buffalo NY 14214 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分析化学;
  • 关键词

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