High-resolution multi-modal imaging of sub-cellular structures with low numerical aperture objective.

IF 4.6 Q1 OPTICS
Journal of Physics-Photonics Pub Date : 2025-04-30 Epub Date: 2025-03-25 DOI:10.1088/2515-7647/adc04f
Somaiyeh Khoubafarin, Peuli Nath, Saloni Malla, Durgesh Desai, William D Gorgas, Amit K Tiwari, Aniruddha Ray
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引用次数: 0

Abstract

Imaging of subcellular structures, which underpins many of the advances in biological and medical sciences, requires microscopes with high numerical aperture (N.A.) objectives which are costly, complex, requires oil immersion and have very limited field-of-view, typically covering a handful of cells. Here, we leverage a low N.A. objective to simultaneously capture scattering, phase, and fluorescence images of subcellular structures in breast cancer cells (BT-20) and observe nanoparticle uptake, with sub-diffraction-limited resolution (<400 nm with a 0.25 N.A. objective) utilizing a 2-dimensional (2-D) microlens substrate. High resolution labeled and label-free images of subcellular components is made possible by implementing a specific configuration, wherein the sample is placed in close proximity to the microlens substrate, which results in efficient collection of the rapidly decaying evanescent waves that contains the high frequency information, thereby improving resolution and the light capture efficiency. The microlens-assisted imaging provides an easy-to-implement and cost-effective means of drastically improving the resolution of any microscope with low N.A. objective lenses, paving the way for the development of affordable, portable multi-modal imaging systems with high-resolution imaging capabilities. This technology has broad implications for various fields and could democratize access to high-quality microscopy, particularly for application in resource-limited settings.

小数值孔径物镜下亚细胞结构的高分辨率多模态成像。
亚细胞结构的成像是生物和医学科学的许多进步的基础,它需要具有高数值孔径物镜的显微镜,这些物镜昂贵、复杂、需要油浸并且视野非常有限,通常只能覆盖少数细胞。在这里,我们利用低na物镜同时捕获乳腺癌细胞(BT-20)中亚细胞结构的散射、相位和荧光图像,并以亚衍射限制分辨率观察纳米颗粒摄取(
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来源期刊
CiteScore
10.70
自引率
0.00%
发文量
27
审稿时长
12 weeks
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