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Quantitative modeling of forces in electromagnetic tweezers

机译:电磁镊中力的定量建模

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摘要

This paper discusses numerical simulations of the magnetic field produced by an electromagnet for generation of forces on superparamagnetic microspheres used in manipulation of single molecules or cells. Single molecule force spectroscopy based on magnetic tweezers can be used in applications that require parallel readout of biopolymer stretching or biomolecular binding. The magnetic tweezers exert forces on the surface-immobilized macromolecule by pulling a magnetic bead attached to the free end of the molecule in the direction of the field gradient. In a typical force spectroscopy experiment, the pulling forces can range between subpiconewton to tens of piconewtons. In order to effectively provide such forces, an understanding of the source of the magnetic field is required as the first step in the design of force spectroscopy systems. In this study, we use a numerical technique, the method of auxiliary sources, to investigate the influence of electromagnet geometry and material parameters of the magnetic core on the magnetic forces pulling the target beads in the area of interest. The close proximity of the area of interest to the magnet body results in deviations from intuitive relations between magnet size and pulling force, as well as in the force decay with distance. We discuss the benefits and drawbacks of various geometric modifications affecting the magnitude and spatial distribution of forces achievable with an electromagnet.
机译:本文讨论了由电磁体产生的磁场的数值模拟,该电磁体用于在超顺磁性微球上产生力,用于操纵单个分子或细胞。基于磁性镊子的单分子力光谱法可用于需要并行读取生物聚合物拉伸或生物分子结合的应用中。磁镊子通过沿磁场梯度的方向拉动附着在分子自由端的磁珠,在表面固定的大分子上施加力。在典型的力谱实验中,拉力的范围可以在亚皮克顿到数十皮克顿之间。为了有效地提供这样的力,需要了解磁场的来源,这是力谱系统设计的第一步。在这项研究中,我们使用一种数值技术,即辅助源的方法,来研究电磁体的几何形状和磁芯材料参数对在感兴趣区域中拉动目标磁珠的磁力的影响。感兴趣区域与磁体的紧密接近会导致磁体尺寸与拉力之间的直观关系出现偏差,并且导致力随距离而衰减。我们讨论了各种几何修改的利弊,这些修改会影响电磁体可达到的力的大小和空间分布。

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