Literature DB >> 31617848

A statistical framework to assess cross-frequency coupling while accounting for confounding analysis effects.

Jessica K Nadalin1, Louis-Emmanuel Martinet2, Ethan B Blackwood3, Meng-Chen Lo3, Alik S Widge3, Sydney S Cash2, Uri T Eden1, Mark A Kramer1.   

Abstract

Cross frequency coupling (CFC) is emerging as a fundamental feature of brain activity, correlated with brain function and dysfunction. Many different types of CFC have been identified through application of numerous data analysis methods, each developed to characterize a specific CFC type. Choosing an inappropriate method weakens statistical power and introduces opportunities for confounding effects. To address this, we propose a statistical modeling framework to estimate high frequency amplitude as a function of both the low frequency amplitude and low frequency phase; the result is a measure of phase-amplitude coupling that accounts for changes in the low frequency amplitude. We show in simulations that the proposed method successfully detects CFC between the low frequency phase or amplitude and the high frequency amplitude, and outperforms an existing method in biologically-motivated examples. Applying the method to in vivo data, we illustrate examples of CFC during a seizure and in response to electrical stimuli.
© 2019, Nadalin et al.

Entities:  

Keywords:  brain rhythms; computational neuroscience; cross-frequency coupling; generalized linear models; human; neural data analysis; neuroscience; rat

Year:  2019        PMID: 31617848      PMCID: PMC6821458          DOI: 10.7554/eLife.44287

Source DB:  PubMed          Journal:  Elife        ISSN: 2050-084X            Impact factor:   8.140


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