2026-09-07 中国科学院(CAS)
<関連情報>
- https://english.cas.cn/newsroom/research-news/202609/t20260903_1192549.shtml
- https://www.pnas.org/doi/10.1073/pnas.2536213123
多パラメータおよび定量的脳機能イメージングのための広視野二領域二光子蛍光寿命イメージング顕微鏡(LD-2P-FLIM) Large-FOV, dual-region, two-photon fluorescence lifetime imaging microscopy (LD-2P-FLIM) for multiparameter and quantitative brain function imaging
Shiwei Ye, Yufeng Gao, Mengying Deng, +18 , and Wei Zheng
Proceedings of the national Academy of Sciences Published:August 7, 2026
DOI:https://doi.org/10.1073/pnas.2536213123

Abstract
Large-scale imaging of multiple dynamic behaviors and quantitative neurochemical concentrations with high spatiotemporal resolution is essential for understanding complex brain functions. Two-photon microscopy (TPM) is ideally suited for in vivo brain function imaging because of its high resolution and deep tissue penetration. However, conventional TPM is limited by a restricted field-of-view (FOV), an inherent trade-off between the imaging area and temporal resolution, and an insufficient amount of information obtained using only intensity recording. Here, we propose large-FOV, dual-region, two-photon fluorescence lifetime imaging microscopy (LD-2P-FLIM) for multiparameter and quantitative brain function imaging, with a 3 × 3 mm2 FOV, a uniform lateral resolution of 0.7 μm, and a FLIM throughput of up to 15.73 megapixels/s (512 × 512 pixels, 30 Hz, two regions). We extend the FOV by breaking the limit of commercial objectives with an effective adaptive optics strategy. To alleviate the trade-off between the imaging area and temporal resolution, we use a temporal multiplexing system that enables simultaneous and flexible two-region imaging across the large FOV. Furthermore, we develop a field programmable gate array module to demultiplex fluorescence signals from different regions and perform high-throughput, two-region FLIM. We demonstrate the superior performance of LD-2P-FLIM by simultaneous monitoring of neural activities across multiple cortical areas, synchronous recording of neurovascular coupling under both physiological and pathological conditions, long-term observation of the microglial response to local neuron injury, and quantitative imaging of calcium concentrations across a large neuronal population in vivo.


