High-resolution focus-tunable one-photon miniaturized fluorescence microscope for imaging in freely moving animals

Xiaoyu Liu, Zenan Wu, Junnan Xu, W. Gong, Ke Si
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Abstract

The relationship between neural activity, brain function, and corresponding biological behaviors remains a significant challenge in neuroscience. Exploring this relationship needs various optical imaging techniques to acquire real-time data with high spatial resolution. A promising technology recently is wearable miniaturized microscopes (mini scopes), which enable long-term neural activity recording in freely moving animals. However, most one-photon mini-scopes have limitations for imaging in-depth with high resolution and large field of view (FOV). To address this, we developed a one-photon miniaturized fluorescence microscope (1P-miniFM), intended for imaging of live brain neurons in free-behaving animals at subcellular level (~1.2 μm). We conducted specially designed optical path, achieving an imaging FOV of ~700 × 400 μm. In addition, we incorporated an electrowetting lens (EWL) to achieve a wide range of ~300 μm z-axis scanning with little resolution loss. 1P-miniFM is compact (11 × 17 × 24 mm) and lightweight (~2.9 g), causing little impediment to animals’ spontaneous behaviors. With genetically encoded calcium indicator GCaMP6s, we monitored neuron activities in secondary motor cortex (M2) during consecutive pain-related and sensory stimulations. We found that M2 neurons are key components and exhibit distinct variations in the response patterns. 1P-miniFM has potential as an excellent tool to explore relationships between neuron network and animal behaviors.
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用于自由移动动物成像的高分辨率聚焦可调单光子微型荧光显微镜
神经活动、大脑功能和相应生物行为之间的关系仍然是神经科学领域的重大挑战。探索这种关系需要各种光学成像技术来获取高空间分辨率的实时数据。可穿戴式微型显微镜(迷你显微镜)是近来一项很有前景的技术,它可以长期记录自由活动动物的神经活动。然而,大多数单光子微型显微镜在高分辨率和大视野(FOV)深度成像方面存在局限性。针对这一问题,我们开发了一种单光子微型荧光显微镜(1P-miniFM),用于在亚细胞水平(约 1.2 μm)对自由活动的动物的活体脑神经元进行成像。我们采用专门设计的光路,实现了 ~700 × 400 μm 的成像视野。此外,我们还采用了电润湿透镜(EWL),在分辨率损失很小的情况下实现了 ~300 μm 的宽范围 Z 轴扫描。1P-miniFM 体积小(11 × 17 × 24 毫米)、重量轻(约 2.9 克),对动物的自发行为几乎没有影响。通过基因编码的钙指示剂 GCaMP6s,我们监测了次级运动皮层(M2)神经元在连续疼痛刺激和感觉刺激时的活动。我们发现,M2 神经元是关键的组成部分,并在反应模式上表现出明显的差异。1P-miniFM 有潜力成为探索神经元网络与动物行为之间关系的绝佳工具。
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