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相干混合受激发射损耗显微镜:使用双涡旋损耗光束的高对比度亚衍射成像

Coherent-hybrid STED: high contrast sub-diffraction imaging using a bi-vortex depletion beam.

作者信息

Pereira António, Sousa Mafalda, Almeida Ana C, Ferreira Luísa T, Costa Ana Rita, Novais-Cruz Marco, Ferrás Cristina, Sousa Mónica Mendes, Sampaio Paula, Belsley Michael, Maiato Helder

机构信息

i3S - Instituto de Investigação e Inovação em Saúde, Universidade do Porto, Rua Alfredo Allen, 208, 4200-135 Porto, Portugal.

IBMC - Instituto de Biologia Molecular e Celular, Rua Alfredo Allen, 208, 4200-135 Porto, Portugal.

出版信息

Opt Express. 2019 Mar 18;27(6):8092-8111. doi: 10.1364/OE.27.008092. Epub 2019 Mar 5.

DOI:10.1364/OE.27.008092
PMID:30894786
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6420153/
Abstract

Stimulated emission depletion (STED) fluorescence microscopy squeezes an excited spot well below the wavelength scale using a doughnut-shaped depletion beam. To generate a doughnut, a scale-free vortex phase modulation (2D-STED) is often used because it provides maximal transverse confinement and radial-aberration immunity (RAI) to the central dip. However, RAI also means blindness to a defocus term, making the axial origin of fluorescence photons uncertain within the wavelength scale provided by the confocal detection pinhole. Here, to reduce the uncertainty, we perturb the 2D-STED phase mask so as to change the sign of the axial concavity near focus, creating a dilated dip. By providing laser depletion power, the dip can be compressed back in three dimensions to retrieve lateral resolution, now at a significantly higher contrast. We test this coherent-hybrid STED (CH-STED) mode in imaging of complex biological structures, such as the dividing cell. The proposed strategy creates an orthogonal direction in the STED parametric space that uniquely allows independent tuning of resolution and contrast using a single depletion beam in a conventional (circular polarization-based) STED setup.

摘要

受激辐射损耗(STED)荧光显微镜使用环形损耗光束将激发光斑压缩到远低于波长尺度。为了产生环形,通常使用无标度涡旋相位调制(二维STED),因为它能提供最大的横向限制和对中心凹陷的径向像差免疫(RAI)。然而,RAI也意味着对散焦项不敏感,使得荧光光子的轴向起源在共聚焦检测针孔提供的波长尺度内不确定。在此,为了降低不确定性,我们对二维STED相位掩模进行微扰,以改变焦点附近轴向凹陷的符号,从而产生一个扩张的凹陷。通过提供激光损耗功率,该凹陷可以在三维空间中被压缩回去以恢复横向分辨率,现在对比度显著更高。我们在复杂生物结构(如分裂细胞)的成像中测试了这种相干混合STED(CH-STED)模式。所提出的策略在STED参数空间中创建了一个正交方向,这独特地允许在传统(基于圆偏振)STED设置中使用单个损耗光束独立调节分辨率和对比度。

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