Tentellino Christian, d'Amora Marta, Melikov Rustamzhon, Iachetta Giuseppina, Bruno Giulia, Tantussi Francesco, Dipalo Michele, De Angelis Francesco
Plasmon Nanotechnologies, Istituto Italiano di Tecnologia, Via Morego 30, Genoa 16153, Italy.
Department of Biology, University of Pisa, S.S. 12 Abetone e Brennero, 4, Pisa 56127, Italy.
ACS Sens. 2025 Feb 28;10(2):1228-1236. doi: 10.1021/acssensors.4c03133. Epub 2025 Feb 5.
neurotoxicology aims to assess and predict the side effects of exogenous chemicals toward the human brain. Among the exploited approaches, electrophysiological techniques stand out for the high spatiotemporal resolution and sensitivity, with the patch clamp considered the gold standard technique for such purposes. However, structural toxicity and metabolic effects may elude detection when only the electrical activity is measured, highlighting the need for integrating electrophysiological recordings with complementary approaches such as optical methods. In this study, we describe an integrated platform for recording neuronal electrical activity and performing chemical analysis with a noninvasive label-free optical imaging, Raman spectroscopy. Specifically, we developed a protocol that maximizes the signal-to-noise ratio while avoiding the crosstalk of the electrical and spectroscopical readouts and any phototoxicity associated with the laser exposure. Synchronous and sequential electrical-optical measurements were carried out and compared, with the sequential approach being more suitable for the longitudinal investigation and correlation of the neuronal electrical activity to the intracellular content of reduced cytochrome C, lipids, proteins, and nucleic acids. Data analysis shows a strong correlation between the metabolic status of the single cells and the overall neuronal firing rate, suggesting the electrode- and label-free assessment of the neuronal firing rates through the monitoring of cytochrome C via Raman spectroscopy when multielectrode array devices with high electrical noise and impedance are used. Conversely, the neuronal firing rate and the reduced cytochrome C content were not correlated to lipids, proteins, and nucleic acids. Thus, this study demonstrates the crosstalk of the neuronal firing rate and reduced cytochrome C as downstream and upstream features of the neuronal metabolic activity and that through the monitoring of the synthesis of lipids, proteins, and nucleic acids, Raman spectroscopy provides additional information for a more accurate assessment of the acute and chronic neurotoxicity.
神经毒理学旨在评估和预测外源性化学物质对人脑的副作用。在已采用的方法中,电生理技术因其高时空分辨率和灵敏度而脱颖而出,膜片钳被认为是用于此目的的金标准技术。然而,当仅测量电活动时,结构毒性和代谢效应可能无法被检测到,这凸显了将电生理记录与诸如光学方法等互补方法相结合的必要性。在本研究中,我们描述了一个用于记录神经元电活动并通过非侵入性无标记光学成像、拉曼光谱进行化学分析的集成平台。具体而言,我们开发了一种方案,该方案在避免电和光谱读数的串扰以及与激光照射相关的任何光毒性的同时,最大化了信噪比。进行并比较了同步和顺序电 - 光测量,顺序方法更适合对神经元电活动与还原型细胞色素C、脂质、蛋白质和核酸的细胞内含量进行纵向研究和相关性分析。数据分析表明单细胞的代谢状态与整体神经元放电率之间存在很强的相关性,这表明当使用具有高电噪声和阻抗的多电极阵列设备时,通过拉曼光谱监测细胞色素C可以对神经元放电率进行无电极和无标记评估。相反,神经元放电率和还原型细胞色素C含量与脂质、蛋白质和核酸无关。因此,本研究证明了神经元放电率和还原型细胞色素C作为神经元代谢活动的下游和上游特征之间的串扰,并且通过监测脂质、蛋白质和核酸的合成,拉曼光谱为更准确评估急性和慢性神经毒性提供了额外信息。