斑点、螺旋和阴影的意义:明场光学显微镜中无标签逆成像的方法。

IF 4.9 Q1 BIOPHYSICS
Biophysical reviews Pub Date : 2025-03-18 eCollection Date: 2025-04-01 DOI:10.1007/s12551-025-01301-1
Braulio Gutiérrez-Medina
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引用次数: 0

摘要

尽管传统的明场光学显微镜有着悠久的历史和广泛的应用,但它作为一种对生物物体进行准确、无标签成像的绝佳选择,最近受到了人们的关注。与任何成像系统一样,亮场产生试样的不明确表示,在这种情况下,其特征是在图像形成中交织的相位和振幅,在精确焦点处相位物体的不可见性,以及图像中存在的正、负对比度。这些缺点阻碍了应用明场对未标记标本的准确成像。为了应对这些挑战,已经开发了各种使用硬件、软件或两者兼而有之的方法,目的是为明场的逆成像问题集提供解决方案。我们修改了明场显微镜的主要工作原理和特点,然后讨论了二维重建的解决方案(和潜在的限制)。我们的重点是基于传统光学的方法,包括离焦显微镜,强度传输,平面摄影和反卷积。介绍了实现三维(3D)亮场成像的进展,包括利用多视图重建、物理建模、深度学习和传统数字图像处理的方法。在这些技术中,光场显微镜(OSBM)中的光学切片构成了一种直接的方法,使用标准显微镜捕获z图像堆栈,并在空间域中应用数字滤波器,产生3D的反成像解决方案。最后,讨论了扩展光场能力的附加技术。因此,传统光学显微镜中的无标签逆成像成为生物样品精确二维和三维成像的强大生物物理工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Making sense of blobs, whorls, and shades: methods for label-free, inverse imaging in bright-field optical microscopy.

Despite its long history and widespread use, conventional bright-field optical microscopy has received recent attention as an excellent option to perform accurate, label-free, imaging of biological objects. As with any imaging system, bright-field produces an ill-defined representation of the specimen, in this case characterized by intertwined phase and amplitude in image formation, invisibility of phase objects at exact focus, and both positive and negative contrast present in images. These drawbacks have prevented the application of bright-field to the accurate imaging of unlabeled specimens. To address these challenges, a variety of methods using hardware, software or both have been developed, with the goal of providing solutions to the inverse imaging problem set in bright-field. We revise the main operating principles and characteristics of bright-field microscopy, followed by a discussion of the solutions (and potential limitations) to reconstruction in two dimensions (2D). We focus on methods based on conventional optics, including defocusing microscopy, transport of intensity, ptychography and deconvolution. Advances to achieving three-dimensional (3D) bright-field imaging are presented, including methods that exploit multi-view reconstruction, physical modeling, deep learning and conventional digital image processing. Among these techniques, optical sectioning in bright-field microscopy (OSBM) constitutes a direct approach that captures z-image stacks using a standard microscope and applies digital filters in the spatial domain, yielding inverse-imaging solutions in 3D. Finally, additional techniques that expand the capabilities of bright-field are discussed. Label-free, inverse imaging in conventional optical microscopy thus emerges as a powerful biophysical tool for accurate 2D and 3D imaging of biological samples.

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来源期刊
Biophysical reviews
Biophysical reviews Biochemistry, Genetics and Molecular Biology-Biophysics
CiteScore
8.90
自引率
0.00%
发文量
93
期刊介绍: Biophysical Reviews aims to publish critical and timely reviews from key figures in the field of biophysics. The bulk of the reviews that are currently published are from invited authors, but the journal is also open for non-solicited reviews. Interested authors are encouraged to discuss the possibility of contributing a review with the Editor-in-Chief prior to submission. Through publishing reviews on biophysics, the editors of the journal hope to illustrate the great power and potential of physical techniques in the biological sciences, they aim to stimulate the discussion and promote further research and would like to educate and enthuse basic researcher scientists and students of biophysics. Biophysical Reviews covers the entire field of biophysics, generally defined as the science of describing and defining biological phenomenon using the concepts and the techniques of physics. This includes but is not limited by such areas as: - Bioinformatics - Biophysical methods and instrumentation - Medical biophysics - Biosystems - Cell biophysics and organization - Macromolecules: dynamics, structures and interactions - Single molecule biophysics - Membrane biophysics, channels and transportation
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