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纳米金刚石-量子传感器揭示与海马神经元发射相关的温度变化。

Nanodiamond-Quantum Sensors Reveal Temperature Variation Associated to Hippocampal Neurons Firing.

机构信息

Istituto Nazionale di Ricerca Metrologica, Strada delle cacce 91, Torino, 10135, Italy.

Physics Department, University of Torino, via P. Giuria 1, Torino, 10125, Italy.

出版信息

Adv Sci (Weinh). 2022 Oct;9(28):e2202014. doi: 10.1002/advs.202202014. Epub 2022 Jul 25.

Abstract

Temperature is one of the most relevant parameters for the regulation of intracellular processes. Measuring localized subcellular temperature gradients is fundamental for a deeper understanding of cell function, such as the genesis of action potentials, and cell metabolism. Notwithstanding several proposed techniques, at the moment detection of temperature fluctuations at the subcellular level still represents an ongoing challenge. Here, for the first time, temperature variations (1 °C) associated with potentiation and inhibition of neuronal firing is detected, by exploiting a nanoscale thermometer based on optically detected magnetic resonance in nanodiamonds. The results demonstrate that nitrogen-vacancy centers in nanodiamonds provide a tool for assessing various levels of neuronal spiking activity, since they are suitable for monitoring different temperature variations, respectively, associated with the spontaneous firing of hippocampal neurons, the disinhibition of GABAergic transmission and the silencing of the network. Conjugated with the high sensitivity of this technique (in perspective sensitive to < 0.1 °C variations), nanodiamonds pave the way to a systematic study of the generation of localized temperature gradients under physiological and pathological conditions. Furthermore, they prompt further studies explaining in detail the physiological mechanism originating this effect.

摘要

温度是调节细胞内过程的最相关参数之一。测量局部亚细胞温度梯度对于深入了解细胞功能(例如动作电位的产生和细胞代谢)至关重要。尽管提出了几种技术,但目前仍在不断挑战在亚细胞水平上检测温度波动。在这里,首次通过利用基于纳米金刚石中光学检测磁共振的纳米温度计,检测到与神经元放电增强和抑制相关的温度变化(1°C)。结果表明,纳米金刚石中的氮空位中心为评估各种神经元尖峰活动水平提供了一种工具,因为它们适合监测分别与海马神经元自发放电、GABA 能传递去抑制以及网络沉默相关的不同温度变化。结合该技术的高灵敏度(有望对 < 0.1°C 的变化敏感),纳米金刚石为在生理和病理条件下产生局部温度梯度的系统研究铺平了道路。此外,它们促使进一步的研究详细解释产生这种效应的生理机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0212/9534962/014ee53d428d/ADVS-9-2202014-g004.jpg

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