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Updated: Sep 9, 2026

Registration of Calcium Transients in Mouse Neuromuscular Junction with High Temporal Resolution using Confocal Microscopy
Published on: December 1, 2021
Large-Field Mesoscopic Spinning-Disk Confocal Microscopy Enhances Quantitative Fidelity for In Vivo Cerebrovascular
Bingchen Che1,2, Sheng Gao1,3, Yuyou Huang4
1Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing100190, China.
Abstract:
Reliable spatiotemporal quantification of fluorescent reporter signals in thick biological specimens remains a central challenge for analytical imaging, because out-of-focus background fluorescence in conventional single-photon wide-field microscopy degrades contrast, obscures signal identification, and compromises measurement fidelity. Here, we present a mesoscopic spinning-disk confocal (MSDC) imaging platform that physically suppresses background fluorescence while preserving the throughput required for large-scale functional imaging. By systematically optimizing the mesoscopic spatial filtering configuration and hardware synchronization scheme, the MSDC system achieves a field of view of ∼6.8 × 6.8 mm2 with uniform ∼8 μm lateral and ∼50 μm axial sectioning thicknesses at full-frame rates up to 100 fps. Ex vivo evaluations demonstrate that the platform successfully suppresses out-of-focus fluorescence by ∼90%, thereby preserving structural contrast and improving imaging fidelity in the presence of strong background signals. In vivo cerebrovascular imaging shows that the MSDC platform substantially reduces background-induced dark-vessel artifacts and enables positive-contrast three-dimensional reconstruction of cerebrovascular networks across cortical depths. When integrated with extended constrained nonnegative matrix factorization analysis, the platform further supports extraction of high-signal-to-noise calcium dynamics from hundreds of active Layer 2/3 neurons distributed across multiple functional brain regions. Together, these results establish MSDC as a robust and cost-effective analytical imaging platform for high-fidelity structural and functional interrogation of fluorescent signals in complex biological specimens.
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