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Complete noise analysis of a simple force spectroscopy AFM setup and its applications to study nanomechanics of mammalian Notch 1 protein

机译:简单力谱AFM装置的完整噪声分析及其在研究哺乳动物Notch 1蛋白纳米力学中的应用

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We describe a complete noise analysis and application of a custom made AFM force spectroscopy setup on pulling a recombinant protein with an NRR domain of mouse Notch 1. Our table top AFM setup is affordable, has an open architecture, and is easily transferable to other laboratories. Its calculated noise characteristics are dominated by the Brownian noise with 2% non-Brownian components integrated over the first thermally induced resonance of a typical cantilever. For a typical SiN cantilever with a force constant of 15pNnm ~1 and in water the force sensitivity and resolution are less than 10pN, and the corresponding deflection sensitivities are less than 100pmHz ~(1/2). Also, we obtain a sub-ms time resolution in detecting the protein length change, and only few ms cantilever response times as measured in the force clamp mode on a well-known protein standard. Using this setup we investigate force-induced conformational transitions in the NRR region of a mouse Notch 1. Notch is an important protein related to leukemia and breast cancers in humans. We demonstrate that it is feasible to develop AFM-based studies of the force-induced conformational transitions in Notch. Our results match recent steered molecular dynamics simulations of the NRR unfolding and constitute a first step towards a detailed study of Notch activation with AFM.
机译:我们描述了完整的噪声分析和定制的AFM力谱仪在拉动带有Notch 1小鼠NRR结构域的重组蛋白时的应用。我们的台式AFM仪价格低廉,具有开放式结构,可轻松转移到其他实验室。它的计算噪声特性主要由布朗噪声控制,在典型的悬臂的第一次热诱导共振过程中,布朗噪声与2%的非布朗分量相集成。对于典型的力常数为15pNnm〜1的SiN悬臂梁,在水中,力灵敏度和分辨率小于10pN,相应的挠度灵敏度小于100pmHz〜(1/2)。同样,我们在检测蛋白质长度变化时获得了亚毫秒级的时间分辨率,并且在众所周知的蛋白质标准品上,在力钳模式下测得的悬臂响应时间只有几毫秒。使用此设置,我们调查了小鼠Notch 1的NRR区域中力诱导的构象转变。Notch是与人类白血病和乳腺癌相关的重要蛋白质。我们证明在缺口中发展基于AFM的力诱导构象转变的研究是可行的。我们的研究结果与最近对NRR展开的分子动力学模拟结果相吻合,构成了详细研究AFM激活Notch的第一步。

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