多视场多光子成像技术在神经科学研究中的发展与应用
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复旦大学 生物医学工程与技术创新学院,上海 200433

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电子邮箱:dongbq@fudan.edu.cn

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R318

基金项目:

上海基础研究特区计划交叉项目(22TQ020);上海市“科技创新行动计划”生物医药科技支撑专项(22S31905500);上海市自然科学基金(22ZR1404300);复旦大学医工结合重点项目(yg2021-032, yg2022-2)


Development and applications of multi-FOV multi-photon imaging technology in neuroscience research
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Affiliation:

College of Biomedical Engineering, Fudan University, Shanghai 200433,China

Fund Project:

Shanghai Basic Research Special Zone Program (22TQ020); Shanghai Science and Technology Innovation Action Plan (22S31905500); Natural Science Foundation of Shanghai (22ZR1404300); Fudan University Medicine-Engineering Integration Key Project (yg2021-032, yg2022-2)

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    摘要:

    高时空分辨率的多脑区同步成像是神经科学研究中的关键需求,然而传统多光子显微技术受限于单视场成像模式,难以实现跨脑区的大范围神经活动观测。多视场多光子成像技术通过物镜前/后光路的视场分割策略,结合波长编码、空间分光及时间门控等多维信号解析方法,有效突破了传统技术的时空分辨率限制。该技术可实现毫秒级时间分辨率与微米级空间分辨率的跨脑区同步成像,为揭示皮层间功能耦合、皮层-亚皮层神经环路协同机制以及全脑尺度神经信号传播动力学提供了全新研究范式。未来,通过与内窥成像、自适应光学像差校正、光刺激以及深度学习的图像解析等技术的深度融合,多视场多光子成像将进一步推动神经环路功能架构的精准解析,并在神经退行性疾病诊疗与脑机接口开发等临床转化领域展现重要价值。

    Abstract:

    High spatiotemporal resolution multi-region brain synchronization imaging is a critical requirement in neural circuit research. However, traditional multiphoton microscopy is limited by its single field-of-view (FOV) imaging mode, making it difficult to achieve large-scale observation of neural activity across multiple brain regions. The multi-FOV multi-photon imaging technology employs a FOV segmentation strategy in both the front and rear optical paths of the objective lens and combines multi-dimensional signal analysis methods (such as wavelength encoding, spatial demultiplexing, and time gating) to effectively overcome the spatiotemporal resolution limitations of traditional techniques. This technology enables millisecond-level temporal resolution and micron-level spatial resolution for synchronous imaging across brain regions, providing a novel research paradigm for revealing cortical functional coupling, cortical-subcortical neural circuit coordination mechanisms, and whole-brain neural signal propagation dynamics. In the future, through in-depth integration with techniques such as endoscopic imaging, adaptive optical aberration correction, optical stimulation and deep learning-based image analysis, multi-FOV multi-photon imaging will further advance the precise decoding of neural circuit functional architecture and demonstrate significant value in clinical translation fields such as neurodegenerative disease diagnosis and brain-machine interface development.

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引用本文

王健平,王琳毅,董必勤.多视场多光子成像技术在神经科学研究中的发展与应用[J].红外与毫米波学报,2025,44(5):669~677]. WANG Jian-Ping, WANG Lin-Yi, DONG Bi-Qin. Development and applications of multi-FOV multi-photon imaging technology in neuroscience research[J]. J. Infrared Millim. Waves,2025,44(5):669~677.]

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  • 收稿日期:2025-04-27
  • 最后修改日期:2025-07-18
  • 录用日期:2025-07-11
  • 在线发布日期: 2025-07-18
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