Single-molecule orientation-localization microscopy: Applications and approaches.

IF 7.2 2区 生物学 Q1 BIOPHYSICS Quarterly Reviews of Biophysics Pub Date : 2024-12-23 DOI:10.1017/S0033583524000167
Oumeng Zhang, Matthew D Lew
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Abstract

Single-molecule orientation-localization microscopy (SMOLM) builds upon super-resolved localization microscopy by imaging orientations and rotational dynamics of individual molecules in addition to their positions. This added dimensionality provides unparalleled insights into nanoscale biophysical and biochemical processes, including the organization of actin networks, movement of molecular motors, conformations of DNA strands, growth and remodeling of amyloid aggregates, and composition changes within lipid membranes. In this review, we discuss recent innovations in SMOLM and cover three key aspects: (1) biophysical insights enabled by labeling strategies that endow fluorescent probes to bind to targets with orientation specificity; (2) advanced imaging techniques that leverage the physics of light-matter interactions and estimation theory to encode orientation information with high fidelity into microscope images; and (3) computational methods that ensure accurate and precise data analysis and interpretation, even in the presence of severe shot noise. Additionally, we compare labeling approaches, imaging hardware, and publicly available analysis software to aid the community in choosing the best SMOLM implementation for their specific biophysical application. Finally, we highlight future directions for SMOLM, such as the development of probes with improved photostability and specificity, the design of “smart” adaptive hardware, and the use of advanced computational approaches to handle large, complex datasets. This review underscores the significant current and potential impact of SMOLM in deepening our understanding of molecular dynamics, paving the way for future breakthroughs in the fields of biophysics, biochemistry, and materials science.

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单分子定向定位显微镜:应用和方法。
单分子定向定位显微镜(SMOLM)建立在超分辨定位显微镜的基础上,通过成像单个分子的定向和旋转动力学以及它们的位置。这种增加的维度提供了对纳米级生物物理和生化过程的无与伦比的见解,包括肌动蛋白网络的组织,分子马达的运动,DNA链的构象,淀粉样蛋白聚集体的生长和重塑,以及脂质膜内成分的变化。在这篇综述中,我们讨论了SMOLM的最新创新,并涵盖了三个关键方面:(1)通过标记策略实现的生物物理见解,使荧光探针能够以定向特异性结合靶标;(2)利用光-物质相互作用的物理原理和估计理论,将高保真的方向信息编码到显微镜图像中的先进成像技术;(3)即使存在严重的弹丸噪声,也能确保准确和精确的数据分析和解释的计算方法。此外,我们比较了标记方法、成像硬件和公开可用的分析软件,以帮助社区选择适合其特定生物物理应用的最佳SMOLM实现。最后,我们强调了SMOLM的未来发展方向,例如具有改进光稳定性和特异性的探针的发展,“智能”自适应硬件的设计,以及使用先进的计算方法来处理大型复杂数据集。这篇综述强调了smom在加深我们对分子动力学的理解方面的重要的当前和潜在的影响,为未来在生物物理学、生物化学和材料科学领域的突破铺平了道路。
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来源期刊
Quarterly Reviews of Biophysics
Quarterly Reviews of Biophysics 生物-生物物理
CiteScore
12.90
自引率
1.60%
发文量
16
期刊介绍: Quarterly Reviews of Biophysics covers the field of experimental and computational biophysics. Experimental biophysics span across different physics-based measurements such as optical microscopy, super-resolution imaging, electron microscopy, X-ray and neutron diffraction, spectroscopy, calorimetry, thermodynamics and their integrated uses. Computational biophysics includes theory, simulations, bioinformatics and system analysis. These biophysical methodologies are used to discover the structure, function and physiology of biological systems in varying complexities from cells, organelles, membranes, protein-nucleic acid complexes, molecular machines to molecules. The majority of reviews published are invited from authors who have made significant contributions to the field, who give critical, readable and sometimes controversial accounts of recent progress and problems in their specialty. The journal has long-standing, worldwide reputation, demonstrated by its high ranking in the ISI Science Citation Index, as a forum for general and specialized communication between biophysicists working in different areas. Thematic issues are occasionally published.
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