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氧化石墨烯电极能够对脑星形胶质细胞中不同的钙信号进行电刺激。

Graphene oxide electrodes enable electrical stimulation of distinct calcium signalling in brain astrocytes.

作者信息

Fabbri Roberta, Scidà Alessandra, Saracino Emanuela, Conte Giorgia, Kovtun Alessandro, Candini Andrea, Kirdajova Denisa, Spennato Diletta, Marchetti Valeria, Lazzarini Chiara, Konstantoulaki Aikaterini, Dambruoso Paolo, Caprini Marco, Muccini Michele, Ursino Mauro, Anderova Miroslava, Treossi Emanuele, Zamboni Roberto, Palermo Vincenzo, Benfenati Valentina

机构信息

Consiglio Nazionale delle Ricerche, Istituto per la Sintesi Organica e la Fotoreattività, Bologna, Italy.

Department of Cellular Neurophysiology, Institute of Experimental Medicine, CAS, Prague, Czech Republic.

出版信息

Nat Nanotechnol. 2024 Sep;19(9):1344-1353. doi: 10.1038/s41565-024-01711-4. Epub 2024 Jul 10.

Abstract

Astrocytes are responsible for maintaining homoeostasis and cognitive functions through calcium signalling, a process that is altered in brain diseases. Current bioelectronic tools are designed to study neurons and are not suitable for controlling calcium signals in astrocytes. Here, we show that electrical stimulation of astrocytes using electrodes coated with graphene oxide and reduced graphene oxide induces respectively a slow response to calcium, mediated by external calcium influx, and a sharp one, exclusively due to calcium release from intracellular stores. Our results suggest that the different conductivities of the substrate influence the electric field at the cell-electrolyte or cell-material interfaces, favouring different signalling events in vitro and ex vivo. Patch-clamp, voltage-sensitive dye and calcium imaging data support the proposed model. In summary, we provide evidence of a simple tool to selectively control distinct calcium signals in brain astrocytes for straightforward investigations in neuroscience and bioelectronic medicine.

摘要

星形胶质细胞通过钙信号传导来维持体内平衡和认知功能,而这一过程在脑部疾病中会发生改变。目前的生物电子工具旨在研究神经元,并不适用于控制星形胶质细胞中的钙信号。在此,我们表明,使用涂有氧化石墨烯和还原氧化石墨烯的电极对星形胶质细胞进行电刺激,分别会诱导出由细胞外钙内流介导的对钙的缓慢反应,以及仅由细胞内钙库释放钙引起的快速反应。我们的结果表明,底物的不同电导率会影响细胞-电解质或细胞-材料界面处的电场,从而在体外和体内促进不同的信号事件。膜片钳、电压敏感染料和钙成像数据支持所提出的模型。总之,我们提供了一种简单工具的证据,该工具可选择性地控制脑星形胶质细胞中不同的钙信号,以便在神经科学和生物电子医学中进行直接研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1d33/11405283/37bb388cd63b/41565_2024_1711_Fig1_HTML.jpg

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