| Literature DB >> 25654757 |
Guangfu Wang1, Daniel R Wyskiel1, Weiguo Yang2, Yiqing Wang3, Lana C Milbern1, Txomin Lalanne4, Xiaolong Jiang1, Ying Shen5, Qian-Quan Sun2, J Julius Zhu6.
Abstract
Deciphering neuronal circuitry is central to understanding brain function and dysfunction, yet it remains a daunting task. To facilitate the dissection of neuronal circuits, a process requiring functional analysis of synaptic connections and morphological identification of interconnected neurons, we present here a method for stable simultaneous octuple patch-clamp recordings. This method allows physiological analysis of synaptic interconnections among 4-8 simultaneously recorded neurons and/or 10-30 sequentially recorded neurons, and it allows anatomical identification of >85% of recorded interneurons and >99% of recorded principal neurons. We describe how to apply the method to rodent tissue slices; however, it can be used on other model organisms. We also describe the latest refinements and optimizations of mechanics, electronics, optics and software programs that are central to the realization of a combined single- and two-photon microscopy-based, optogenetics- and imaging-assisted, stable, simultaneous quadruple-viguple patch-clamp recording system. Setting up the system, from the beginning of instrument assembly and software installation to full operation, can be completed in 3-4 d.Entities:
Mesh:
Year: 2015 PMID: 25654757 PMCID: PMC4505930 DOI: 10.1038/nprot.2015.019
Source DB: PubMed Journal: Nat Protoc ISSN: 1750-2799 Impact factor: 13.491