Khan Sajjad A, Lidke Keith A, Liu Sheng
Department of Physics and Astronomy, University of New Mexico, Albuquerque, New Mexico, USA.
Nanoscience and Microsystems Engineering, University of New Mexico, Albuquerque, New Mexico, USA.
Biomed Opt Express. 2025 Jul 10;16(8):3139-3155. doi: 10.1364/BOE.563592. eCollection 2025 Aug 1.
Single-molecule localization microscopy (SMLM) enables precise spatial localization of single molecules in cellular structures. A phenomenon called supercritical angle fluorescence (SAF) is utilized in SMLM (SAF-SMLM) to estimate the axial positions of single fluorophores. It is based on the fact that SAF intensity is highly sensitive to the fluorophore-coverslip distance. Conventional SAF-SMLM methods typically involve splitting the fluorescence emission into supercritical and undercritical components, which requires a complicated two-channel system and can lead to reduced light efficiency. In this work, we introduce a simplified approach to traditional SAF-SMLM by directly detecting all fluorescence into a single channel. Through simulations, we found that by accurately modeling the point spread function (PSF) with SAF, a single-channel system achieves better localization precision than two-channel-based SAF-SMLM systems. Furthermore, we developed a stage-tilt correction algorithm, incorporating stage tilt in the PSF model, to improve axial precision over the entire field of view. We applied our method experimentally by imaging F-actin filaments in HeLa cells. We demonstrate that our method efficiently exploits the information from SAF and achieves enhanced axial localization precision and accuracy compared to traditional SMLM localization methods for single-channel systems.
单分子定位显微镜(SMLM)能够精确地对细胞结构中的单分子进行空间定位。在SMLM(超临界角荧光-SMLM,SAF-SMLM)中利用了一种称为超临界角荧光(SAF)的现象来估计单个荧光团的轴向位置。这基于SAF强度对荧光团-盖玻片距离高度敏感这一事实。传统的SAF-SMLM方法通常涉及将荧光发射分为超临界和亚临界成分,这需要一个复杂的双通道系统,并且可能导致光效率降低。在这项工作中,我们通过将所有荧光直接检测到单个通道中,引入了一种对传统SAF-SMLM的简化方法。通过模拟,我们发现通过用SAF精确建模点扩散函数(PSF),单通道系统比基于双通道的SAF-SMLM系统具有更好的定位精度。此外,我们开发了一种阶段倾斜校正算法,将阶段倾斜纳入PSF模型,以提高整个视野的轴向精度。我们通过对HeLa细胞中的F-肌动蛋白丝成像,对我们的方法进行了实验应用。我们证明,与单通道系统的传统SMLM定位方法相比,我们的方法有效地利用了来自SAF的信息,并实现了更高的轴向定位精度和准确性。