Richards Morgan, Malic Nikolina, Osterlund Elizabeth J, Buendia Andrea Rhikkaella, Polga Laura, Truant Ray, Fang Qiyin
Department of Engineering Physics, McMaster University, Hamilton, ON L8S 4L8 Canada.
School of Biomedical Engineering, McMaster University, Hamilton, ON L8S 4L8 Canada.
Discov Imaging. 2025;2(1):7. doi: 10.1007/s44352-025-00010-5. Epub 2025 May 26.
Quantitative measurements of the dynamics of biomolecular interactions allow biologists to develop a better understanding of biological processes that are critical to new diagnostic tools, drug discovery, and personalized treatments of diseases. Such measurements require multidimensional (spatial, spectral, and temporal) imaging with a high frame rate. Conventional single point confocal microscopy can produce 3D images at video rate but faces difficulties in accurately measuring fluorescence lifetime images (FLIM) while maintaining low excitation power to avoid phototoxicity and photobleaching in live cells. Multipoint confocal fluorescence lifetime imaging offers access to microscopic dynamics at the subcellular resolution. We have designed a 32 × 32 point multiplexing time-resolved confocal microscope to address these problems and demonstrated the power of this system to measure live cell FLIM of Förester resonance energy transfer (FRET). Using a pinhole array simplifies the optical system design, allowing improved optical efficiency for imaging at faster frame rates with a temporally calibrated single photon avalanche detector (SPAD) array. These efficiency improvements are leveraged by redesigning the optomechanical system and software processing to achieve a frame rate 12 times faster than previously demonstrated. Through dilution series measurements, we demonstrate that a concentration as low as 10 µM Coumarin6 can be measured accurately at 4 Hz frame rates. The performance is also demonstrated with fixed, stained samples and FLIM-FRET constructs in live cells at a maximum imaging rate of 4 Hz with an image dimension of 960 × 960 pixels.
对生物分子相互作用动力学进行定量测量,能让生物学家更好地理解对新型诊断工具、药物研发以及疾病个性化治疗至关重要的生物过程。此类测量需要高帧率的多维(空间、光谱和时间)成像。传统的单点共聚焦显微镜可以以视频速率生成三维图像,但在准确测量荧光寿命图像(FLIM)时面临困难,同时还要保持低激发功率以避免活细胞中的光毒性和光漂白。多点共聚焦荧光寿命成像能够在亚细胞分辨率下获取微观动力学信息。我们设计了一台32×32点复用时间分辨共聚焦显微镜来解决这些问题,并展示了该系统测量福斯特共振能量转移(FRET)活细胞FLIM的能力。使用针孔阵列简化了光学系统设计,通过时间校准的单光子雪崩探测器(SPAD)阵列,在更快的帧率下成像时可提高光学效率。通过重新设计光机械系统和软件处理,利用这些效率提升实现了比之前展示的快12倍的帧率。通过稀释系列测量,我们证明在4Hz帧率下可以准确测量低至10µM香豆素6的浓度。在固定染色样本以及活细胞中的FLIM - FRET构建体上也展示了该性能,最大成像速率为4Hz,图像尺寸为960×960像素。