硅
材料科学
细胞内
合理设计
纳米技术
生物物理学
计算机科学
生物系统
化学
光电子学
生物
生物化学
作者
Yuanwen Jiang,Xia Li,Bing Liu,Jaeseok Yi,Yin Fang,Fengyuan Shi,Xiang Gao,Edward Sudzilovsky,Ramya Parameswaran,Kelliann Koehler,Vishnu Nair,Jiping Yue,KuangHua Guo,Yin Fang,Hsiu‐Ming Tsai,George Freyermuth,Raymond Wong,Chien-Min Kao,Chin‐Tu Chen,A. W. Nicholls,Xiaoyang Wu,Gordon M. Shepherd,Bozhi Tian
标识
DOI:10.1038/s41551-018-0230-1
摘要
Silicon-based materials have been widely used in biological applications. However, remotely controlled and interconnect-free silicon configurations have been rarely explored, because of limited fundamental understanding of the complex physicochemical processes that occur at interfaces between silicon and biological materials. Here, we describe rational design principles, guided by biology, for establishing intracellular, intercellular and extracellular silicon-based interfaces, where the silicon and the biological targets have matched properties. We focused on light-induced processes at these interfaces, and developed a set of matrices to quantify and differentiate the capacitive, Faradaic and thermal outputs from about 30 different silicon materials in saline. We show that these interfaces are useful for the light-controlled non-genetic modulation of intracellular calcium dynamics, of cytoskeletal structures and transport, of cellular excitability, of neurotransmitter release from brain slices and of brain activity in vivo. Intracellular, intercellular and extracellular silicon interfaces enable light-controlled non-genetic modulation of intracellular calcium dynamics, of cellular excitability, of neurotransmitter release from brain slices, and of brain activity in vivo.
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