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哺乳动物神经元电生理特性实验室内变异性来源的建模

Modeling sources of interlaboratory variability in electrophysiological properties of mammalian neurons.

作者信息

Tebaykin Dmitry, Tripathy Shreejoy J, Binnion Nathalie, Li Brenna, Gerkin Richard C, Pavlidis Paul

机构信息

Department of Psychiatry and Michael Smith Laboratories, University of British Columbia , Vancouver, British Columbia , Canada.

Graduate Program in Bioinformatics, University of British Columbia , Vancouver, British Columbia , Canada.

出版信息

J Neurophysiol. 2018 Apr 1;119(4):1329-1339. doi: 10.1152/jn.00604.2017. Epub 2017 Dec 20.

Abstract

Patch-clamp electrophysiology is widely used to characterize neuronal electrical phenotypes. However, there are no standard experimental conditions for in vitro whole cell patch-clamp electrophysiology, complicating direct comparisons between data sets. In this study, we sought to understand how basic experimental conditions differ among laboratories and how these differences might impact measurements of electrophysiological parameters. We curated the compositions of external bath solutions (artificial cerebrospinal fluid), internal pipette solutions, and other methodological details such as animal strain and age from 509 published neurophysiology articles studying rodent neurons. We found that very few articles used the exact same experimental solutions as any other, and some solution differences stem from recipe inheritance from advisor to advisee as well as changing trends over the years. Next, we used statistical models to understand how the use of different experimental conditions impacts downstream electrophysiological measurements such as resting potential and action potential width. Although these experimental condition features could explain up to 43% of the study-to-study variance in electrophysiological parameters, the majority of the variability was left unexplained. Our results suggest that there are likely additional experimental factors that contribute to cross-laboratory electrophysiological variability, and identifying and addressing these will be important to future efforts to assemble consensus descriptions of neurophysiological phenotypes for mammalian cell types. NEW & NOTEWORTHY This article describes how using different experimental methods during patch-clamp electrophysiology impacts downstream physiological measurements. We characterized how methodologies and experimental solutions differ across articles. We found that differences in methods can explain some, but not all, of the study-to-study variance in electrophysiological measurements. Explicitly accounting for methodological differences using statistical models can help correct downstream electrophysiological measurements for cross-laboratory methodology differences.

摘要

膜片钳电生理学被广泛用于表征神经元电表型。然而,体外全细胞膜片钳电生理学没有标准的实验条件,这使得数据集之间的直接比较变得复杂。在本研究中,我们试图了解各实验室之间的基本实验条件有何不同,以及这些差异如何影响电生理参数的测量。我们从509篇发表的研究啮齿动物神经元的神经生理学文章中整理了细胞外浴液(人工脑脊液)、内微管溶液的成分,以及其他方法学细节,如动物品系和年龄。我们发现,很少有文章使用与其他文章完全相同的实验溶液,一些溶液差异源于从导师到学生的配方传承以及多年来不断变化的趋势。接下来,我们使用统计模型来了解不同实验条件的使用如何影响下游电生理测量,如静息电位和动作电位宽度。尽管这些实验条件特征可以解释高达43%的不同研究间电生理参数的差异,但大部分变异性仍无法解释。我们的结果表明,可能还有其他实验因素导致跨实验室电生理变异性,识别并解决这些因素对于未来为哺乳动物细胞类型汇编神经生理表型的共识描述的努力至关重要。新内容与值得关注之处 本文描述了在膜片钳电生理学过程中使用不同实验方法如何影响下游生理测量。我们表征了不同文章中方法学和实验溶液的差异。我们发现方法上的差异可以解释部分但不是全部不同研究间电生理测量的差异。使用统计模型明确考虑方法学差异有助于校正跨实验室方法学差异对下游电生理测量的影响。

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