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Label-Free Monitoring of Histone Acetylation Using Aptamer-Functionalized Field-Effect Transistor and Quartz Crystal Microbalance Sensors

机译:使用适体官能化场效应晶体管和石英晶微观传感器的可无标记监测组蛋白乙酰化

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摘要

Chemical and enzymatic modifications of amino acid residues in protein after translation contain rich information about physiological conditions and diseases. Histone acetylation/deacetylation is the essential post-translational modification by regulating gene transcription. Such qualitative changes of biomacromolecules need to be detected in point-of-care systems for an early and accurate diagnosis. However, there is no technique to aid this issue. Previously, we have applied an aptamer-functionalized field-effect transistor (FET) to the specific protein biosensing. Quantitative changes of target protein in a physiological solution have been determined by detecting innate charges of captured protein at the gate-solution interface. Moreover, we have succeeded in developing an integrated system of FET and quartz crystal microbalance (QCM) sensors for determining the adsorbed mass and charge, simultaneously or in parallel. Prompted by this, in this study, we developed a new label-free method for detecting histone acetylation using FET and QCM sensors. The loss of positive charge of lysine residue by chemically induced acetylation of histone subunits (H3 and H4) was successfully detected by potentiometric signals using anti-histone aptamer-functionalized FET. The adsorbed mass was determined by the same anti-histone aptamer-functionalized QCM. From these results, the degree of acetylation was correlated to the charge-to-mass ratio of histone subunits. The histone required for the detection was below 100 nM, owing to the high sensitivity of aptamer-functionalized FET and QCM sensors. These findings will guide us to a new way of measuring post-translational modification of protein in a decentralized manner for an early and accurate diagnosis.
机译:翻译后蛋白质中氨基酸残基的化学和酶促修饰包含有关生理病症和疾病的丰富信息。组蛋白乙酰化/脱乙酰化是通过调节基因转录的基本翻译后修饰。需要在护理点系统中检测到生物致摩托的这种定性变化,以进行早期和准确的诊断。但是,没有技术可以帮助这个问题。以前,我们已经将Aptamer官能化的场效应晶体管(FET)施加到特定的蛋白质生物体传感器上。通过在栅极 - 溶液界面处检测捕获蛋白的先天电荷来确定生理溶液中靶蛋白的定量变化。此外,我们已经成功地开发了用于开发FET和石英晶体微稳态(QCM)传感器的集成系统,用于同时或平行地确定吸附的质量和电荷。由此提示,在本研究中,我们开发了一种使用FET和QCM传感器检测组蛋白乙酰化的新标签方法。通过使用抗组蛋白适体官能化FET通过化学诱导的组蛋白亚基(H3和H4)的乙酰化通过化学诱导的乙酰化的溶液丧失赖氨酸残基的丧失。吸附的质量通过相同的抗组蛋白型官能化QCM测定。从这些结果,乙酰化程度与组蛋白亚基的电荷质量比相关。由于适体官能化FET和QCM传感器的高灵敏度,检测所需的组蛋白低于100nm。这些调查结果将指导我们以分散的方式测量蛋白质后翻译后修饰的新方法,以进行早期和准确的诊断。

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