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Improved Single Molecule Force Spectroscopy Using Micromachined Cantilevers

机译:改进的使用微加工悬臂的单分子力光谱

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Enhancing the short-term force precision of atomic force microscopy (AFM) while maintaining excellent long-term force stability would result in improved performance across multiple AFM modalities, including single molecule force spectroscopy (SMFS). SMFS is a powerful method to probe the nanometer-scale dynamics and energetics of biomolecules (DNA, RNA, and proteins). The folding and unfolding rates of such macromolecules are sensitive to sub-pN changes in force. Recently, we demonstrated sub-pN stability over a broad bandwidth (Δf = 0.01-16 Hz) by removing the gold coating from a 100 μm long cantilever. However, this stability came at the cost of increased short-term force noise, decreased temporal response, and poor sensitivity. Here, we avoided these compromises while retaining excellent force stability by modifying a short (L = 40 μm) cantilever with a focused ion beam. Our process led to a ~10-fold reduction in both a cantilever's stiffness and its hydrodynamic drag near a surface. We also preserved the benefits of a highly reflective cantilever while mitigating gold-coating induced long-term drift. As a result, we extended AFM's sub-pN bandwidth by a factor of~50 to span five decades of bandwidth (Δf≈0.01-1000 Hz). Measurements ofmechanically stretching individual proteins showed improved force precision coupledwith state-of-the-art force stability and no significant loss in temporal resolution compared to the stiffer, unmodified cantilever. Finally, these cantilevers were robust and were reused for SFMS over multiple days. Hence, we expect these responsive, yet stable, cantilevers to broadly benefit diverse AFM-based studies.
机译:在保持出色的长期力稳定性的同时提高原子力显微镜(AFM)的短期力精度,将导致包括单分子力谱(SMFS)在内的多种AFM方式的性能得到改善。 SMFS是探测生物分子(DNA,RNA和蛋白质)的纳米级动力学和能量学的有力方法。这种大分子的折叠和解折叠速率对力的亚pN变化敏感。最近,我们通过从100μm长的悬臂上去除了金涂层,证明了在较宽的带宽(Δf= 0.01-16 Hz)下的亚pN稳定性。但是,这种稳定性是以增加短期力噪声,降低时间响应和降低灵敏度为代价的。在这里,我们通过使用聚焦离子束修改短(L = 40μm)悬臂来避免这些折衷,同时保持了出色的力稳定性。我们的过程导致悬臂的刚度及其在表面附近的流体动力阻力降低了约10倍。我们还保留了高反射性悬臂的好处,同时减轻了镀金引起的长期漂移。结果,我们将AFM的sub-pN带宽扩展了约50倍,从而跨越了数十年的带宽(Δf≈0.01-1000Hz)。机械拉伸单个蛋白质的测量结果显示,与较硬的未修饰悬臂相比,其力精确度得到了提高,并且具有最新的力稳定性,并且在时间分辨率上没有明显损失。最后,这些悬臂坚固耐用,可在多天内用于SFMS。因此,我们希望这些反应灵敏但稳定的悬臂能够广泛受益于各种基于AFM的研究。

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