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Development and applications of single particle orientation and rotational tracking in dynamic systems

机译:动态系统中单粒子定向和旋转跟踪的开发与应用

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摘要

Optical microscopy has successfully been used to visualize the dynamics of living systems for decades. Numerous microscopic techniques, including single particle tracking (SPT), have been developed to measure dynamic processes in living cells with minimum disruption to the cellular functions. SPT is capable of accessing individual behaviors of imaging probe (single molecule or nanoparticle) with high spatial and temporal resolution. It has been utilized for investigating dynamic events of single molecule and nanoparticle in many different biological systems. Single particle orientation and rotational tracking (SPORT) studies not only the spatial movements as in conventional SPT but also the orientation and rotational behavior of imaging probes in order to reveal the molecular mechanisms involved in fundamental motions. A variety of experimental techniques have been reported for determining the orientation and rotational motions of optical imaging probes. Differential interference contrast (DIC) microscopy, along with the use of anisotropic plasmonic nanoparticles as optical probes, offers unique ability in SPORT study.Synthesis of novel imaging probes, innovations in optical implementation, advance in data analysis could all contribute to the development and expanding the applications of SPORT techniques in dynamic studies. Multishell Au/Ag/SiO2 core-shell hybrid nanorods with tunable optical properties were synthesized and used as new SPORT probes in DIC microscopy. These nanorods provided enhanced detection sensitivity, improved stability and additional surface modification possibility. The addition of a wedge prism and the implementation of auto-focusing algorithm formed Parallax-DIC microscopy in the 5D-SPT method. It enables the simultaneous 3D spatial tracking and orientation determination in visualization of intracellular transport of cargos in live cells. Autocorrelation function analysis and binning function in imageJ was utilized for DIC data processing. Experimental parameters, such as trajectory length of the SPT tracking and frame rate (exposure time) were investigated for the rotation of surface modified gold nanorods on synthetic lipid bilayers with assistance of computer simulations. However, much effort is still required in exploring new imaging probes, optical microscopic implementations, and data analysis methods to further extend the potential of DIC-based SPORT techniques in dynamic studies.
机译:数十年来,光学显微镜已成功用于可视化生命系统的动态。已经开发出包括单颗粒跟踪(SPT)在内的多种微观技术,以最小程度地破坏细胞功能来测量活细胞中的动态过程。 SPT能够以高空间和时间分辨率访问成像探针(单个分子或纳米颗粒)的个别行为。它已被用于研究许多不同生物系统中单分子和纳米粒子的动态事件。单粒子定向和旋转跟踪(SPORT)不仅研究常规SPT中的空间运动,而且研究成像探针的定向和旋转行为,以揭示参与基本运动的分子机制。已经报道了用于确定光学成像探针的取向和旋转运动的各种实验技术。微分干涉对比(DIC)显微镜以及各向异性等离子体纳米粒子作为光学探针的使用在SPORT研究中提供了独特的功能。新型成像探针的合成,光学实现的创新,数据分析的进步都可以为开发和扩展做出贡献SPORT技术在动态研究中的应用。合成了具有可调光学性能的多壳Au / Ag / SiO2核壳杂化纳米棒,并将其用作DIC显微镜中的新型SPORT探针。这些纳米棒提供了增强的检测灵敏度,更高的稳定性和额外的表面修饰可能性。在5D-SPT方法中,增加了楔形棱镜并实现了自动聚焦算法,从而形成了视差DIC显微镜。它可以在可视化活细胞中货物的细胞内运输过程中同时进行3D空间跟踪和方向确定。 imageJ中的自相关函数分析和合并功能用于DIC数据处理。实验参数,如SPT跟踪的轨迹长度和帧速率(曝光时间),借助计算机模拟研究了表面修饰的金纳米棒在合成脂质双层上的旋转。但是,在探索新的成像探头,光学显微镜实施方案和数据分析方法方面,仍需要大量努力来进一步扩展基于DIC的SPORT技术在动态研究中的潜力。

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  • 作者

    Chen, Kuangcai;

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  • 年度 2015
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  • 原文格式 PDF
  • 正文语种 en
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