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Characterization and Quantification of Biological Surfaces Using Cluster ToF-SIMS with the Event-By-Event Bombardment/Detection Mode

机译:使用逐事件轰击/检测模式的簇ToF-SIMS对生物表面进行表征和定量

摘要

Cluster ToF-SIMS (time-of-flight secondary ion mass spectrometry) operated in the event-by-event bombardment/detection mode has been applied to: 1) evaluate and screen the manufacturing quality of step-wise prepared micropatterned biointerfaces; 2) quantify the binding density of Au nanoparticles (AuNPs)-antiCD4 conjugates selectively attached on the cell surface; 3) elucidate the biological interaction of proteins and molecules by quantifying the fractional coverage of immobilized biomolecules; 4) enhance the accuracy of secondary ion identification of specific molecules. Briefly, our method consists of recording the secondary ions, SIs, individually emitted from a single projectile impact (C60 1,2+, Au400 +4). From the set of individual mass data, we select events where a specific SI was detected. The selected records reveal the SIs co-ejected from the nanovolume impacted by an individual cluster projectile from an emission area of 10-20 nm in diameter and an emission depth of 5-10 nm. The approach for quantifying the number of AuNPs or that of specific nanodomains is via the concept of the fractional coverage. The latter is the ratio of the effective number of projectile impacts on a specified sampling area (Ne) to the total number of impacts (No). The methodology has been validated with the determination of the number of antibody-AuNP conjugates on a cell, i.e. the number of disease related antigens on a cell via their specific binding sites with the AuNP-labeled antibodies. The number of AuNP-antibodies measured, ~42000 per cell, is in good agreement with literature results. The fractional coverage concept was also used to quantify several variants of biointerfaces. An example is the quantification of biotin and avidin immobilization as a function of the composition of silane substrates. The data collected in the event-by-event bombardment/detection mode expands the scope and quality of analytical information. One can identify SIs co-emitted with two specified SIs (double coincidence mass spectrometry) to inspect a specific stratum of a biointerface. A further refinement is the selection of events meeting a double coincidence emission condition. This mode enables the identification of nano-object of a few nm in size, which eliminates (anticoincidence) interferences from substrates.
机译:在逐个事件轰击/检测模式下运行的簇ToF-SIMS(飞行时间二次离子质谱)已用于:1)评估和筛选逐步制备的微模式生物界面的制造质量; 2)量化选择性附着在细胞表面的金纳米颗粒(AuNPs)-抗CD4结合物的结合密度; 3)通过定量固定化生物分子的覆盖率,阐明蛋白质与分子之间的生物学相互作用; 4)提高特定分子二次离子鉴定的准确性。简而言之,我们的方法包括记录从单个弹丸撞击(C60 1,2 +,Au400 +4)单独发射的二次离子SI。从单个质量数据集中,我们选择检测到特定SI的事件。选定的记录揭示了从单个粒子团弹撞击的纳米体积中共同喷射的SI,其发射直径为10-20 nm,发射深度为5-10 nm。量化AuNPs或特定纳米域数量的方法是通过分数覆盖率的概念。后者是在指定采样区域上的弹丸撞击的有效次数(Ne)与撞击总数(否)之比。该方法已经通过确定细胞上抗体-AuNP缀合物的数目,即通过细胞上与AuNP标记的抗体的特异性结合位点的疾病相关抗原的数目来验证。每个细胞测得的AuNP抗体数量约为42000,与文献结果相吻合。分数覆盖率概念还用于量化生物界面的几种变体。一个例子是生物素和抗生物素蛋白固定化的数量随硅烷底物组成的变化而变化。通过逐事件轰炸/检测模式收集的数据扩展了分析信息的范围和质量。一个人可以识别与两个指定的SI(双重巧合质谱)共同发射的SI,以检查生物界面的特定层。进一步的改进是选择满足双重一致发射条件的事件。此模式可以识别大小为几纳米的纳米物体,从而消除了来自基板的(反入射)干扰。

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  • 作者

    Chen Li-Jung;

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  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 en_US
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