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利用模糊石墨烯远程非遗传光学调节神经元活动。

Remote nongenetic optical modulation of neuronal activity using fuzzy graphene.

机构信息

Department of Biomedical Engineering, Carnegie Mellon University, Pittsburgh, PA 15213.

Department of Materials Science and Engineering, Carnegie Mellon University, Pittsburgh, PA 15213.

出版信息

Proc Natl Acad Sci U S A. 2020 Jun 16;117(24):13339-13349. doi: 10.1073/pnas.1919921117. Epub 2020 Jun 1.

Abstract

The ability to modulate cellular electrophysiology is fundamental to the investigation of development, function, and disease. Currently, there is a need for remote, nongenetic, light-induced control of cellular activity in two-dimensional (2D) and three-dimensional (3D) platforms. Here, we report a breakthrough hybrid nanomaterial for remote, nongenetic, photothermal stimulation of 2D and 3D neural cellular systems. We combine one-dimensional (1D) nanowires (NWs) and 2D graphene flakes grown out-of-plane for highly controlled photothermal stimulation at subcellular precision without the need for genetic modification, with laser energies lower than a hundred nanojoules, one to two orders of magnitude lower than Au-, C-, and Si-based nanomaterials. Photothermal stimulation using NW-templated 3D fuzzy graphene (NT-3DFG) is flexible due to its broadband absorption and does not generate cellular stress. Therefore, it serves as a powerful toolset for studies of cell signaling within and between tissues and can enable therapeutic interventions.

摘要

调节细胞电生理学的能力是研究发育、功能和疾病的基础。目前,需要在二维(2D)和三维(3D)平台上实现远程、非遗传、光诱导的细胞活性控制。在这里,我们报告了一种用于远程、非遗传、光热刺激 2D 和 3D 神经细胞系统的混合纳米材料的突破。我们将一维(1D)纳米线(NWs)和二维石墨烯薄片组合在一起,用于在亚细胞精度下进行高度可控的光热刺激,而无需基因修饰,激光能量低于一百纳焦耳,比金、碳和硅基纳米材料低一到两个数量级。使用 NW 模板化 3D 模糊石墨烯(NT-3DFG)进行光热刺激具有宽带吸收的灵活性,并且不会产生细胞应激。因此,它是研究组织内和组织间细胞信号的强大工具集,并且可以实现治疗干预。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dd97/7306804/b49a61dee30f/pnas.1919921117fig01.jpg

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