Model-based correction of rapid thermal confounds in fluorescence neuroimaging of targeted perturbation.

IF 4.8 2区 医学 Q1 NEUROSCIENCES Neurophotonics Pub Date : 2024-01-01 Epub Date: 2024-02-16 DOI:10.1117/1.NPh.11.1.014413
Neda Davoudi, Hector Estrada, Ali Özbek, Shy Shoham, Daniel Razansky
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Abstract

Significance: An array of techniques for targeted neuromodulation is emerging, with high potential in brain research and therapy. Calcium imaging or other forms of functional fluorescence imaging are central solutions for monitoring cortical neural responses to targeted neuromodulation, but often are confounded by thermal effects that are inter-mixed with neural responses.

Aim: Here, we develop and demonstrate a method for effectively suppressing fluorescent thermal transients from calcium responses.

Approach: We use high precision phased-array 3 MHz focused ultrasound delivery integrated with fiberscope-based widefield fluorescence to monitor cortex-wide calcium changes. Our approach for detecting the neural activation first takes advantage of the high inter-hemispheric correlation of resting state Ca2+ dynamics and then removes the ultrasound-induced thermal effect by subtracting its simulated spatio-temporal signature from the processed profile.

Results: The focused 350  μm-sized ultrasound stimulus triggered rapid localized activation events dominated by transient thermal responses produced by ultrasound. By employing bioheat equation to model the ultrasound heat deposition, we can recover putative neural responses to ultrasound.

Conclusions: The developed method for canceling transient thermal fluorescence quenching could also find applications with optical stimulation techniques to monitor thermal effects and disentangle them from neural responses. This approach may help deepen our understanding of the mechanisms and macroscopic effects of ultrasound neuromodulation, further paving the way for tailoring the stimulation regimes toward specific applications.

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基于模型的目标扰动荧光神经成像中快速热混淆校正。
意义重大:靶向神经调控的一系列技术正在兴起,在脑研究和治疗方面具有巨大潜力。钙成像或其他形式的功能荧光成像是监测大脑皮层神经对定向神经调控反应的核心解决方案,但往往会受到混杂在神经反应中的热效应的干扰。目的:在此,我们开发并演示了一种有效抑制钙反应中荧光热瞬态的方法:方法:我们使用高精度相控阵 3 MHz 聚焦超声传输与基于纤维镜的宽场荧光相结合的方法来监测整个皮层的钙变化。我们检测神经激活的方法首先利用了静息态 Ca2+ 动态的半球间高度相关性,然后通过从处理后的剖面图中减去模拟时空特征来消除超声诱导的热效应:结果:350微米大小的聚焦超声刺激引发了以超声产生的瞬时热反应为主的快速局部激活事件。通过使用生物热方程来模拟超声热沉积,我们可以恢复神经对超声的假定反应:结论:所开发的消除瞬态热荧光淬灭的方法也可应用于光学刺激技术,以监测热效应并将其与神经反应区分开来。这种方法可能有助于加深我们对超声神经调制的机制和宏观效应的理解,从而进一步为定制特定应用的刺激机制铺平道路。
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来源期刊
Neurophotonics
Neurophotonics Neuroscience-Neuroscience (miscellaneous)
CiteScore
7.20
自引率
11.30%
发文量
114
审稿时长
21 weeks
期刊介绍: At the interface of optics and neuroscience, Neurophotonics is a peer-reviewed journal that covers advances in optical technology applicable to study of the brain and their impact on the basic and clinical neuroscience applications.
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