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Electro-optic deflectors deliver advantages over acousto-optical deflectors in a high resolution ultra-fast force-clamp optical trap

机译:电光偏转器在高分辨率超快速力夹式光阱中比声光偏转器更具优势

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摘要

We characterized experimental artifacts arising from the non-linear response of acousto-optical deflectors (AODs) in an ultra-fast force-clamp optical trap and have shown that using electro-optical deflectors (EODs) instead eliminates these artifacts. We give an example of the effects of these artifacts in our ultra-fast force clamp studies of the interaction of myosin with actin filaments. The experimental setup, based on the concept of Capitanio et al. [Nat. Methods 9, 1013–1019 (2012) [] []] utilizes a bead-actin-bead dumbbell held in two force-clamped optical traps which apply a load to the dumbbell to move it at a constant velocity. When myosin binds to actin, the filament motion stops quickly as the total force from the optical traps is transferred to the actomyosin attachment. We found that in our setup, AODs were unsuitable for beam steering due to non-linear variations in beam intensity and deflection angle as a function of driving frequency, likely caused by low-amplitude standing acoustic waves in the deflectors. These aberrations caused instability in the force feedback loops leading to artifactual jumps in the trap position. We demonstrate that beam steering with EODs improves the performance of our instrument. Combining the superior beam-steering capability of the EODs, force acquisition via back-focal-plane interferometry, and dual high-speed FPGA-based feedback loops, we apply precise and constant loads to study the dynamics of interactions between actin and myosin. The same concept applies to studies of other biomolecular interactions.
机译:我们在超快速力夹式光阱中表征了声光偏转器(AOD)的非线性响应引起的实验伪影,并表明使用电光偏转器(EOD)可以消除这些伪影。我们在肌球蛋白与肌动蛋白丝相互作用的超快速力钳研究中给出了这些伪影的影响的例子。实验设置基于Capitanio等人的概念。 [Nat。方法9,1013–1019(2012)[] []]利用固定在两个受力夹紧的光阱中的珠-肌动蛋白-珠哑铃,向哑铃施加负载以使其以恒定速度运动。当肌球蛋白与肌动蛋白结合时,细丝的运动会迅速停止,因为来自光阱的总力会转移到肌动球蛋白附件上。我们发现,在我们的装置中,由于光束强度和偏转角随驱动频率而变化的非线性变化,AOD不适合光束转向,这很可能是由于偏转器中的低振幅驻声波引起的。这些像差导致力反馈回路不稳定,从而导致陷阱位置出现人为跳跃。我们证明了带EOD的光束转向可以改善仪器的性能。结合EOD出色的光束转向能力,通过后焦平面干涉测量法获得的力以及基于双高速FPGA的反馈回路,我们应用精确且恒定的载荷来研究肌动蛋白和肌球蛋白之间相互作用的动力学。相同的概念适用于其他生物分子相互作用的研究。

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