论文标题

使用钻石量子传感器对脑神经元电活动的微观尺度记录

Microscopic-scale recording of brain neuronal electrical activity using a diamond quantum sensor

论文作者

Hansen, Nikolaj Winther, Webb, James Luke, Troise, Luca, Olsson, Christoffer, Tomasevic, Leo, Brinza, Ovidiu, Achard, Jocelyn, Staacke, Robert, Kieschnick, Michael, Meijer, Jan, Thielscher, Axel, Siebner, Hartwig Roman, Berg-Sørensen, Kirstine, Perrier, Jean-François, Huck, Alexander, Andersen, Ulrik Lund

论文摘要

研究神经退行性疾病早期阶段的重要工具是研究动物模型大脑的解剖生命组织。这样的研究允许在神经元电活动旁边探测单个神经元和神经回路的物理结构,这些神经元电动活性的破坏可以阐明疾病出现的机制。现有用于记录活性的技术依赖于与样品的潜在损害直接相互作用,以机械的方式作为点电探针,或通过强烈的聚焦激光与高度特异性的遗传修饰和/或潜在的有毒荧光染料相结合。在这项工作中,我们使用基于钻石的颜色中心的生物相容性量子传感器对电活动进行了被动的微观尺度记录。我们记录小鼠call体轴突中离子电流诱导的生物磁场,而无需直接样品相互作用,准确地恢复了与动作电位传播相对应的信号,同时证明了通过对二毒素毒素抑制电压门控钠通道在生物磁毒素记录过程中的原位药理学。我们的结果为微观记录神经元信号的记录开辟了一个有希望的新途径,从而提供了对活哺乳动物大脑中电路的高分辨率成像的前景。

An important tool in the investigation of the early stages of neurodegenerative disease is the study of dissected living tissue from the brain of an animal model. Such investigations allow the physical structure of individual neurons and neural circuits to be probed alongside neuronal electrical activity, disruption of which can shed light on the mechanisms of emergence of disease. Existing techniques for recording activity rely on potentially damaging direct interaction with the sample, either mechanically as point electrical probes or via intense focused laser light combined with highly specific genetic modification and/or potentially toxic fluorescent dyes. In this work, we instead perform passive, microscopic-scale recording of electrical activity using a biocompatible quantum sensor based on colour centres in diamond. We record biomagnetic field induced by ionic currents in mouse corpus callosum axons without direct sample interaction, accurately recovering signals corresponding to action potential propagation while demonstrating in situ pharmacology during biomagnetic recording through tetrodotoxin inhibition of voltage gated sodium channels. Our results open a promising new avenue for the microscopic recording of neuronal signals, offering the prospect of high resolution imaging of electrical circuits in the living mammalian brain.

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