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Errors in Energy Landscapes Measured with Particle Tracking

机译:用粒子跟踪测量的能源格局中的误差

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摘要

Tracking Brownian particles is often employed to map the energy landscape they explore. Such measurements have been exploited to study many biological processes and interactions in soft materials. Yet video tracking is irremediably contaminated by localization errors originating from two imaging artifacts: the “static” errors come from signal noise, and the “dynamic” errors arise from the motion blur due to finite frame-acquisition time. We show that these errors result in systematic and nontrivial biases in the measured energy landscapes. We derive a relationship between the true and the measured potential that elucidates, among other aberrations, the presence of false double-well minima in the apparent potentials reported in recent studies. We further assess several canonical trapping and pair-interaction potentials by using our analytically derived results and Brownian dynamics simulations. In particular, we show that the apparent spring stiffness of harmonic potentials (such as optical traps) is increased by dynamic errors but decreased by static errors. Our formula allows for the development of efficient corrections schemes, and we also present in this work a provisional method for reconstructing true potentials from the measured ones.
机译:跟踪布朗粒子通常用于绘制他们探索的能量图。已经利用这种测量来研究软材料中的许多生物过程和相互作用。然而,视频跟踪却不可避免地受到源自两个成像伪影的定位误差的污染:“静态”误差来自信号噪声,而“动态”误差则归因于有限帧获取时间造成的运动模糊。我们表明,这些误差会导致在测量的能源格局中出现系统性和非平凡的偏差。我们推导了真实电势和测量电势之间的关系,该关系阐明了在最近的研究中报道的表观电势中,假双井极小值的存在以及其他畸变。通过使用我们的分析得出的结果和布朗动力学模拟,我们进一步评估了几种典型的俘获和成对相互作用的潜力。特别是,我们显示出谐波电位(例如光阱)的表观弹簧刚度因动态误差而增加,但因静态误差而降低。我们的公式允许开发有效的校正方案,并且我们在这项工作中还提出了一种临时方法,用于从被测电位重建真实电位。

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