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Interlaboratory round robin on cantilever calibration for AFM force spectroscopy

机译:实验室间循环法在AFM力谱悬臂标定中的应用

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Single-molecule force spectroscopy studies performed by Atomic Force Microscopes (AFMs) strongly rely on accurately determined cantilever spring constants. Hence, to calibrate cantilevers, a reliable calibration protocol is essential. Although the thermal noise method and the direct Sader method are frequently used for cantilever calibration, there is no consensus on the optimal calibration of soft and V-shaped cantilevers, especially those used in force spectroscopy. Therefore, in this study we aimed at establishing a commonly accepted approach to accurately calibrate compliant and V-shaped cantilevers. In a round robin experiment involving eight different laboratories we compared the thermal noise and the Sader method on ten commercial and custom-built AFMs. We found that spring constants of both rectangular and V-shaped cantilevers can accurately be determined with both methods, although the Sader method proved to be superior. Furthermore, we observed that simultaneous application of both methods on an AFM proved an accurate consistency check of the instrument and thus provides optimal and highly reproducible calibration. To illustrate the importance of optimal calibration, we show that for biological force spectroscopy studies, an erroneously calibrated cantilever can significantly affect the derived (bio)physical parameters. Taken together, our findings demonstrated that with the pre-established protocol described reliable spring constants can be obtained for different types of cantilevers.
机译:原子力显微镜(AFM)进行的单分子力光谱研究强烈依赖于精确确定的悬臂弹簧常数。因此,要校准悬臂,可靠的校准协议必不可少。尽管热噪声法和直接萨德法经常用于悬臂标定,但对于软悬臂和V形悬臂,尤其是用于力谱学的悬臂的最佳校准尚无共识。因此,在这项研究中,我们旨在建立一种普遍接受的方法,以准确地校准顺应性和V形悬臂。在涉及八个不同实验室的循环实验中,我们比较了十个商用和定制AFM的热噪声和Sader方法。我们发现矩形和V形悬臂的弹簧常数都可以用两种方法精确确定,尽管Sader方法被证明是优越的。此外,我们观察到两种方法在AFM上的同时应用证明了仪器的准确一致性检查,因此可提供最佳且高度可重复的校准。为了说明最佳校准的重要性,我们表明,对于生物力谱研究,错误校准的悬臂会显着影响衍生的(生物)物理参数。综上所述,我们的发现表明,使用预先建立的协议,可以针对不同类型的悬臂梁获得可靠的弹簧常数。

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