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A force calibration standard for magnetic tweezers

机译:磁力镊子的力校准标准

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To study the behavior of biological macromolecules and enzymatic reactions under force, advances in single-molecule force spectroscopy have proven instrumental. Magnetic tweezers form one of the most powerful of these techniques, due to their overall simplicity, non-invasive character, potential for high throughput measurements, and large force range. Drawbacks of magnetic tweezers, however, are that accurate determination of the applied forces can be challenging for short biomolecules at high forces and very time-consuming for long tethers at low forces below ∼1 piconewton. Here, we address these drawbacks by presenting a calibration standard for magnetic tweezers consisting of measured forces for four magnet configurations. Each such configuration is calibrated for two commonly employed commercially available magnetic microspheres. We calculate forces in both time and spectral domains by analyzing bead fluctuations. The resulting calibration curves, validated through the use of different algorithms that yield close agreement in their determination of the applied forces, span a range from 100 piconewtons down to tens of femtonewtons. These generalized force calibrations will serve as a convenient resource for magnetic tweezers users and diminish variations between different experimental configurations or laboratories.
机译:为了研究生物大分子的行为和在力作用下的酶促反应,单分子力谱学的进步已被证明是有帮助的。电磁镊子由于其整体简单性,无创性,高通量测量的潜力以及较大的作用力范围而成为这些技术中最强大的一种。然而,磁性镊子的缺点是,对于短生物分子在高力下精确测定所施加的力可能具有挑战性,而在低于1皮欧顿的低力下对于长系链则非常耗时。在这里,我们通过提出一种用于由四个磁体配置的测得力组成的磁镊子的校准标准来解决这些缺陷。针对两个常用的可商购获得的磁性微球校准每个这样的配置。我们通过分析磁珠波动来计算时域和频谱域中的力。所产生的校准曲线通过使用不同的算法进行了验证,这些算法在确定所施加的力时具有紧密的一致性,范围从100微微牛顿到数十毫微微牛顿。这些广义的力校准将为磁力镊子用户提供方便的资源,并减少不同实验配置或实验室之间的差异。

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