Miniaturized integration of a fluorescence microscope

作者:Ghosh Kunal K; Burns Laurie D; Cocker Eric D; Nimmerjahn Axel; Ziv Yaniv; El Gamal Abbas; Schnitzer Mark J*
来源:Nature Methods, 2011, 8(10): 871-U147.
DOI:10.1038/NMETH.1694

摘要

The light microscope is traditionally an instrument of substantial size and expense. Its miniaturized integration would enable many new applications based on mass-producible, tiny microscopes. Key prospective usages include brain imaging in behaving animals for relating cellular dynamics to animal behavior. Here we introduce a miniature (1.9 g) integrated fluorescence microscope made from mass-producible parts, including a semiconductor light source and sensor. This device enables high-speed cellular imaging across similar to 0.5 mm(2) areas in active mice. This capability allowed concurrent tracking of Ca2+ spiking in >200 Purkinje neurons across nine cerebellar microzones. During mouse locomotion, individual microzones exhibited large-scale, synchronized Ca2+ spiking. This is a mesoscopic neural dynamic missed by prior techniques for studying the brain at other length scales. Overall, the integrated microscope is a potentially transformative technology that permits distribution to many animals and enables diverse usages, such as portable diagnostics or microscope arrays for large-scale screens.

  • 出版日期2011-10