美利体育登录入口官网:通过单病毒追踪揭示病毒感染早期阶段的机制
Revealing Mechanisms in the Early Stages of Virus Infection by Single-Virus Tracking
作者:Lei Du;Li-Juan Zhang;Dai-Wen Pang;
DOI:https://doi.org/10.1021/acs.accounts.5c00491
发表时间:2025年
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美利体育登录入口官网:摘要
点击复制章节链接章节链接已复制!概要 解析病毒侵染的机制对于控制病毒传播和治疗病毒性疾病至关重要。病毒侵染表现出高度复杂且动态的过程,涉及多样的侵染途径、多步骤侵染程序、与宿主细胞组分复杂的相互作用,甚至病毒颗粒分层结构的时空变化。许多关键的生物学事件,如病毒进入、转运和复制,可能在几秒到几分钟内发生。传统的病毒学技术主要提供静态的、平均的信息,通常无法准确捕捉病毒侵染的动态特征。 动态成像技术的出现为病毒学研究带来了新的时代。其中,单病毒追踪(SVT)代表了革命性的突破,它利用荧光显微镜实时可视化单个荧光标记的病毒颗粒。通过以高时空分辨率重建和统计分析生物分子轨迹,该方法提供了其动态行为的定量见解。与传统病毒学方法相比,SVT具有三个关键优势:(1)在侵染过程中精确定位单个病毒轨迹,(2)动态监测病毒-宿主相互作用,(3)聚焦于病毒侵染的特定步骤。这一前沿技术已经成功揭示了病毒侵染的机制,为理解病毒侵染过程提供了前所未有的视角。 在本综述中,我们重点介绍动态成像技术解决的关键问题,特别是其在病毒学中的应用,并讨论它如何实现关键发现以及通过该技术揭示的病毒侵染关键机制。具体而言,我们深入分析病毒侵染过程中三个关键的生物学过程:(1)病毒进入宿主细胞的分子机制,(2)病毒颗粒的细胞内运输,(3)膜融合和基因组释放的动态过程。在前人研究的基础上,我们首次系统、全面地呈现了病毒侵染早期阶段的动态图景,如SVT所揭示的。通过代表性案例研究,我们突出了动态成像技术在解析生物过程分子机制中的卓越分析能力和广泛适用性。最后,我们讨论了该领域的未来挑战和方向,强调跨学科方法的关键作用。我们预见,物理学、化学和生命科学领域的增强协作将加速SVT在生物医学研究中的创新应用,并激发探索未知机制的新策略。 ACS Publications版权所有 ? 2025 美国化学会 主题什么是主题
美利体育登录入口官网:Abstract
AbstractClick to copy section linkSection link copied!ConspectusUnraveling the mechanisms of viral infection is crucial for controlling viral transmission and treating viral diseases. Viral infection exhibits highly complex and dynamic processes, involving diverse infection routes, multistep infection procedures, intricate interactions with host cellular components, and even spatiotemporal changes in the hierarchical structure of viral particles. Many critical biological events, such as viral entry, trafficking, and replication, can occur within seconds to minutes. Conventional virology techniques predominantly provide static, averaged information, often failing to accurately capture the dynamic features of viral infection.The advent of dynamic imaging technologies has ushered in a new era for virology research. Among these, single-virus tracking (SVT) represents a revolutionary breakthrough, enabling real-time visualization of individual fluorescently labeled virions using fluorescence microscopy. By reconstructing and statistically analyzing biomolecular trajectories with high spatiotemporal resolution, this approach yields quantitative insights into their dynamic behavior. In contrast to conventional virological methods, SVT offers three key advantages: (1) precise localization of individual viral trajectories during infection, (2) dynamic monitoring of virus–host interactions, and (3) focusing on specific steps in the viral infection. This cutting-edge technique has already demonstrated remarkable success in elucidating the mechanisms of viral infection, providing an unprecedented perspective for understanding viral infection processes.In this Account, we focus on the key problems addressed by dynamic imaging technology, particularly its applications in virology, and discuss how it enables critical discoveries and the key mechanisms of viral infection revealed using this technology. Specifically, we provide an in-depth analysis of three pivotal biological processes during viral infection: (1) the molecular mechanisms of viral entry into host cells, (2) intracellular transport of viral particles, and (3) the dynamic processes of membrane fusion and genome release. Building upon previous research, we present, for the first time, a systematic and comprehensive dynamic landscape of the early stages of viral infection, as revealed by SVT. Through representative case studies, we highlight the remarkable analytical power and broad applicability of dynamic imaging techniques in deciphering molecular mechanisms of biological processes. Finally, we discuss future challenges and directions in this field, highlighting the critical role of interdisciplinary approaches. We envision that enhanced collaboration across physics, chemistry, and life sciences will accelerate SVT’s innovative applications in biomedical research and inspire novel strategies for uncovering unexplored mechanisms.ACS PublicationsCopyright ? 2025 American Chemical SocietySubjectswhat are subjects Article subjects are automatically applied from the ACS Subject Taxonomy and describe the scientific concepts and themes of the article. Fluorescence Infectious diseases Labeling Quantum dots Viruses
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