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首页> 外文期刊>Journal of Theoretical Biology >Dynamic simulation and modeling of the motion modes produced during the 3D controlled manipulation of biological microanoparticles based on the AFM
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Dynamic simulation and modeling of the motion modes produced during the 3D controlled manipulation of biological microanoparticles based on the AFM

机译:在基于AFM的生物微粒/纳米粒子3D控制操纵过程中产生的运动模式的动态模拟和建模

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Determining the motion modes and the exact position of a particle displaced during the manipulation process is of special importance. This issue becomes even more important when the studied particles are biological microanopartides and the goals of manipulation are the transfer of these particles within body cells, repair of cancerous cells and the delivery of medication to damaged cells. However, due to the delicate nature of biological nanoparticles and their higher vulnerability, by obtaining the necessary force of manipulation for the considered motion mode, we can prevent the sample from interlocking with or sticking to the substrate because of applying a weak force or avoid damaging the sample due to the exertion of excessive force. In this paper, the dynamic behaviors and the motion modes of biological microanoparticles such as DNA, yeast, platelet and bacteria due to the 3D manipulation effect have been investigated. Since the above nanopartides generally have a cylindrical shape, the cylindrical contact models have been employed in an attempt to more precisely model the forces exerted on the nanoparticle during the manipulation process. Also, this investigation has performed a comprehensive modeling and simulation of all the possible motion modes in 3D manipulation by taking into account the eccentricity of the applied load on the biological nanoparticle. The obtained results indicate that unlike the macroscopic scale, the sliding of nanoparticle on substrate in nano-scale takes place sooner than the other motion modes and that the spinning about the vertical and transverse axes and the rolling of nanoparticle occur later than the other motion modes. The simulation results also indicate that the applied force necessary for the onset of nanoparticle movement and the resulting motion mode depend on the size and aspect ratio of the nanopartide. (C) 2015 Elsevier Ltd. All rights reserved.
机译:确定在操纵过程中移动的粒子的运动模式和确切位置特别重要。当所研究的颗粒是生物微粒/纳米颗粒,并且操纵的目标是这些颗粒在人体细胞内的转移,癌细胞的修复以及药物向受损细胞的递送时,这个问题变得更加重要。但是,由于生物纳米颗粒的微妙性质和较高的脆弱性,通过为考虑的运动模式获得必需的操纵力,我们可以防止样品因施加弱力而互锁或粘附在基材上或避免损坏样品由于施加了过大的力。在本文中,研究了由于3D操纵效应而引起的DNA,酵母,血小板和细菌等生物纳米微粒的动力学行为和运动模式。由于上述纳米粒子通常具有圆柱形状,因此已经采用圆柱接触模型来试图更精确地模拟在操纵过程中施加在纳米颗粒上的力。此外,此研究还通过考虑到生物纳米粒子上所施加负载的偏心率,对3D操作中所有可能的运动模式进行了全面的建模和仿真。获得的结果表明,与宏观尺度不同,纳米颗粒在纳米尺度上在基底上的滑动比其他运动模式发生得更快,并且绕垂直轴和横向轴的旋转以及纳米颗粒的滚动比其他运动模式发生得更晚。 。模拟结果还表明,纳米粒子开始运动所需的作用力和产生的运动模式取决于纳米粒子的尺寸和纵横比。 (C)2015 Elsevier Ltd.保留所有权利。

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