Rapid adaptive optics enabling near noninvasive high-resolution brain imaging in awake behaving mice.

IF 15.7 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Zhentao She, Yiming Fu, Yingzhu He, Gewei Yan, Wanjie Wu, Zhongya Qin, Jianan Qu
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Abstract

High-resolution imaging under physiological conditions is essential for studying biological mechanisms and disease processes. However, achieving this goal remains challenging due to optical aberrations and scattering from heterogeneous tissue structures, compounded by motion artifacts from awake animals. In this study, we developed a rapid and accurate adaptive optics system called multiplexing digital focus sensing anrobod shaping (MD-FSS) for deep-tissue multiphoton microscopy. Under two-photon excitation, MD-FSS precisely measures the aberrated point spread function in approximately 0.1 s per measurement, effectively compensating for both aberrations and scattering to achieve subcellular resolution in deep tissue. Using MD-FSS integrated with two-photon microscopy, we achieved high-resolution brain imaging through thinned or optically cleared skull windows, two near noninvasive methods to access mouse brain, reaching depths up to 600 μm below the pia in awake behaving mice. Our findings revealed significant differences in microglial functional states and microvascular circulation dynamics between awake and anesthetized conditions, highlighting the importance of studying brain function in awake mice through noninvasive methods. We captured functional imaging of fine neuronal structures at subcellular level in both somatosensory and visual cortices. Additionally, we demonstrated high-resolution imaging of microvascular structures and neurovascular coupling across multiple cortical regions and depths in the awake brain. Our work shows that MD-FSS accurately corrects tissue-induced aberrations and scattering through rapid PSF measurements, enabling near-noninvasive, high-resolution imaging in awake, behaving mice.

快速自适应光学使近无创的高分辨率脑成像清醒行为小鼠。
生理条件下的高分辨率成像对于研究生物机制和疾病过程至关重要。然而,由于来自异质组织结构的光学像差和散射,以及来自清醒动物的运动伪影,实现这一目标仍然具有挑战性。在这项研究中,我们开发了一种快速准确的自适应光学系统,称为多路数字聚焦传感无机器人整形(MD-FSS),用于深层组织多光子显微镜。在双光子激发下,MD-FSS在每次测量约0.1 s的时间内精确测量像差点扩展函数,有效地补偿了像差和散射,实现了深层组织的亚细胞分辨率。利用MD-FSS与双光子显微镜相结合,我们通过变薄或光学清除的颅骨窗口实现了高分辨率的脑成像,这是两种接近无创的方法,可以进入小鼠大脑,在清醒行为的小鼠中,深度可达pia以下600 μm。我们的研究结果揭示了清醒和麻醉状态下小胶质细胞功能状态和微血管循环动力学的显著差异,强调了通过非侵入性方法研究清醒小鼠脑功能的重要性。我们在亚细胞水平上捕获了体感觉和视觉皮层的精细神经元结构的功能成像。此外,我们展示了清醒大脑中多个皮质区域和深度的微血管结构和神经血管耦合的高分辨率成像。我们的研究表明,MD-FSS通过快速的PSF测量准确地纠正了组织诱导的畸变和散射,在清醒、行为正常的小鼠中实现了近乎无创的高分辨率成像。
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来源期刊
Nature Communications
Nature Communications Biological Science Disciplines-
CiteScore
24.90
自引率
2.40%
发文量
6928
审稿时长
3.7 months
期刊介绍: Nature Communications, an open-access journal, publishes high-quality research spanning all areas of the natural sciences. Papers featured in the journal showcase significant advances relevant to specialists in each respective field. With a 2-year impact factor of 16.6 (2022) and a median time of 8 days from submission to the first editorial decision, Nature Communications is committed to rapid dissemination of research findings. As a multidisciplinary journal, it welcomes contributions from biological, health, physical, chemical, Earth, social, mathematical, applied, and engineering sciences, aiming to highlight important breakthroughs within each domain.
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