体内
钙
斑马鱼
生物神经网络
神经科学
荧光蛋白
生物学中的钙
化学
神经细胞
荧光
神经活动
光遗传学
试剂
生物
钙显像
生物物理学
绿色荧光蛋白
细胞生物学
细胞内
生物化学
物理
物理化学
生物技术
有机化学
基因
量子力学
作者
Benjamin F. Fosque,Yi Sun,Hod Dana,Chao-Tsung Yang,Tomoko Ohyama,Michael R. Tadross,Ronak Patel,Marta Zlatic,Douglas S. Kim,Misha B. Ahrens,Vivek Jayaraman,Loren L. Looger,Eric R. Schreiter
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2015-02-12
卷期号:347 (6223): 755-760
被引量:444
标识
DOI:10.1126/science.1260922
摘要
The identification of active neurons and circuits in vivo is a fundamental challenge in understanding the neural basis of behavior. Genetically encoded calcium (Ca(2+)) indicators (GECIs) enable quantitative monitoring of cellular-resolution activity during behavior. However, such indicators require online monitoring within a limited field of view. Alternatively, post hoc staining of immediate early genes (IEGs) indicates highly active cells within the entire brain, albeit with poor temporal resolution. We designed a fluorescent sensor, CaMPARI, that combines the genetic targetability and quantitative link to neural activity of GECIs with the permanent, large-scale labeling of IEGs, allowing a temporally precise "activity snapshot" of a large tissue volume. CaMPARI undergoes efficient and irreversible green-to-red conversion only when elevated intracellular Ca(2+) and experimenter-controlled illumination coincide. We demonstrate the utility of CaMPARI in freely moving larvae of zebrafish and flies, and in head-fixed mice and adult flies.
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