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Biomolecular interactions and tools for their recognition: focus on the quartz crystal microbalance and its diverse surface chemistries and applications

机译:生物分子相互作用及其识别工具:专注于石英晶体微量天平及其多样的表面化学和应用

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摘要

Interactions between molecules are ubiquitous and occur in our bodies, the food we eat, the air we breathe, and myriad additional contexts. Although numerous tools are available for the recognition of biomolecular interactions, such tools are often limited in their sensitivity, expensive, arid difficult to modify for various uses. In contrast, the quartz crystal microbalance (QCM) has sub-nanogram detection capabilities, is label-free, is inexpensive to create, and can be readily modified with a number of diverse surface chemistries to detect and characterize diverse interactions. To maximize the versatility of the QCM, scientists need to know available methods by which QCM surfaces can be modified. Therefore, in addition to summarizing the various tools currently used for biomolecular recognition, explicating the fundamental principles of the QCM as a tool for biomolecular recognition, and comparing the QCM with other acoustic sensors, we systematically review the numerous types of surface chemistries—including hydrophobic bonds, ionic bonds, hydrogen bonds, self-assembled monolayers, plasma-polymerized films, photochemistry, and sensing ionic liquids—used to functionalize QCMs for various purposes. We also review the QCM's diverse applications, which include the detection of gaseous species, detection of carbohydrates, detection of nucleic acids, detection of non-enzymatic proteins, characterization of enzymatic activity, detection of antigens and antibodies, detection of cells, and detection of drugs. Finally, we discuss the ultimate goals of and potential barriers to the development of future QCMs.
机译:分子之间的相互作用无处不在,并发生在我们的身体,我们吃的食物,我们呼吸的空气以及无数其他环境中。尽管有许多工具可用于识别生物分子之间的相互作用,但这类工具的敏感性,昂贵且难以为各种用途而改变,因而常常受到限制。相反,石英晶体微量天平(QCM)具有亚纳米级的检测功能,没有标签,制造成本低廉,并且可以通过多种多样的表面化学方法轻松进行修饰,以检测和表征多种相互作用。为了最大限度地提高QCM的多功能性,科学家需要了解可用于修改QCM表面的可用方法。因此,除了总结当前用于生物分子识别的各种工具,阐述作为生物分子识别工具的QCM的基本原理,以及将QCM与其他声学传感器进行比较之外,我们系统地审查了多种类型的表面化学,包括疏水性键,离子键,氢键,自组装单层膜,等离子聚合膜,光化学和感测离子液体–用于功能化QCM的各种目的。我们还将审查QCM的各种应用,包括检测气态物种,检测碳水化合物,检测核酸,检测非酶蛋白,表征酶活性,检测抗原和抗体,检测细胞以及检测QCM。毒品。最后,我们讨论了未来QCM发展的最终目标和潜在障碍。

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