Paviolo Chiara, Stoddart Paul R
LP2N-Institut d'Optique & CNRS, University of Bordeaux, 33400 Talence, France.
ARC Training Centre in Biodevices, Faculty of Science, Engineering and Technology, Swinburne University of Technology, Hawthorn, P.O. Box 218, Victoria 3122, Australia.
Nanomaterials (Basel). 2017 Apr 24;7(4):92. doi: 10.3390/nano7040092.
Understanding the detailed functioning and pathophysiology of the brain and the nervous system continues to challenge the scientific community, particularly in terms of scaling up techniques for monitoring and interfacing with complex 3D networks. Nanotechnology has the potential to support this scaling up, where the eventual goal would be to address individual nerve cells within functional units of both the central and peripheral nervous system. Gold nanoparticles provide a variety of physical and chemical properties that have attracted attention as a light-activated nanoscale neuronal interface. This review provides a critical overview of the photothermal and photomechanical properties of chemically functionalized gold nanoparticles that have been exploited to trigger a range of biological responses in neuronal tissues, including modulation of electrical activity and nerve regeneration. The prospects and challenges for further development are also discussed.
了解大脑和神经系统的详细功能及病理生理学仍然是科学界面临的挑战,尤其是在扩大用于监测复杂三维网络并与之交互的技术规模方面。纳米技术有潜力支持这种规模扩大,最终目标是针对中枢神经系统和周围神经系统功能单元内的单个神经细胞。金纳米颗粒具有多种物理和化学性质,作为光激活纳米级神经元界面已受到关注。本综述对化学功能化金纳米颗粒的光热和光机械性质进行了批判性概述,这些性质已被用于引发神经元组织中的一系列生物学反应,包括调节电活动和神经再生。还讨论了进一步发展的前景和挑战。