Toward a brighter constellation: multiorgan neuroimaging of neural and vascular dynamics in the spinal cord and brain.

IF 4.8 2区 医学 Q1 NEUROSCIENCES Neurophotonics Pub Date : 2024-04-01 Epub Date: 2024-05-07 DOI:10.1117/1.NPh.11.2.024209
Dmitrijs Celinskis, Christopher J Black, Jeremy Murphy, Adriel Barrios-Anderson, Nina G Friedman, Nathan C Shaner, Carl Y Saab, Manuel Gomez-Ramirez, David A Borton, Christopher I Moore
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引用次数: 0

Abstract

Significance: Pain comprises a complex interaction between motor action and somatosensation that is dependent on dynamic interactions between the brain and spinal cord. This makes understanding pain particularly challenging as it involves rich interactions between many circuits (e.g., neural and vascular) and signaling cascades throughout the body. As such, experimentation on a single region may lead to an incomplete and potentially incorrect understanding of crucial underlying mechanisms.

Aim: We aimed to develop and validate tools to enable detailed and extended observation of neural and vascular activity in the brain and spinal cord. The first key set of innovations was targeted to developing novel imaging hardware that addresses the many challenges of multisite imaging. The second key set of innovations was targeted to enabling bioluminescent (BL) imaging, as this approach can address limitations of fluorescent microscopy including photobleaching, phototoxicity, and decreased resolution due to scattering of excitation signals.

Approach: We designed 3D-printed brain and spinal cord implants to enable effective surgical implantations and optical access with wearable miniscopes or an open window (e.g., for one- or two-photon microscopy or optogenetic stimulation). We also tested the viability for BL imaging and developed a novel modified miniscope optimized for these signals (BLmini).

Results: We describe "universal" implants for acute and chronic simultaneous brain-spinal cord imaging and optical stimulation. We further describe successful imaging of BL signals in both foci and a new miniscope, the "BLmini," which has reduced weight, cost, and form-factor relative to standard wearable miniscopes.

Conclusions: The combination of 3D-printed implants, advanced imaging tools, and bioluminescence imaging techniques offers a coalition of methods for understanding spinal cord-brain interactions. Our work has the potential for use in future research into neuropathic pain and other sensory disorders and motor behavior.

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走向更明亮的星座:脊髓和大脑神经和血管动态的多器官神经成像。
意义重大:疼痛是运动动作和躯体感觉之间的复杂互动,取决于大脑和脊髓之间的动态互动。由于疼痛涉及全身许多回路(如神经回路和血管回路)和信号级联之间丰富的相互作用,因此理解疼痛尤其具有挑战性。因此,对单个区域进行实验可能会导致对关键潜在机制的不完整和可能不正确的理解。目标:我们的目标是开发和验证各种工具,以便能够对大脑和脊髓中的神经和血管活动进行详细和扩展观察。第一组关键创新的目标是开发新型成像硬件,以应对多点成像的诸多挑战。第二组关键创新的目标是实现生物发光(BL)成像,因为这种方法可以解决荧光显微镜的局限性,包括光漂白、光毒性以及因激发信号散射而导致的分辨率降低:我们设计了三维打印的大脑和脊髓植入物,以实现有效的手术植入,并通过可穿戴式微型显微镜或开放式窗口(例如,用于单光子或双光子显微镜或光遗传刺激)进行光学访问。我们还测试了BL成像的可行性,并开发了一种针对这些信号进行优化的新型改良微型显微镜(BLmini):结果:我们描述了用于急性和慢性同时脑脊髓成像和光刺激的 "通用 "植入物。我们进一步描述了两个病灶中 BL 信号的成功成像,以及新型迷你镜 "BLmini",与标准可穿戴迷你镜相比,它的重量、成本和外形都有所降低:结论:三维打印植入物、先进的成像工具和生物发光成像技术的结合为了解脊髓与大脑之间的相互作用提供了多种方法。我们的研究成果有望在未来的神经性疼痛、其他感觉障碍和运动行为研究中得到应用。
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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.
期刊最新文献
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