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Sampling Rate Effects on Resting State fMRI Metrics

Low image sampling rates used in resting state functional magnetic resonance imaging (rs-fMRI) may cause aliasing of the cardiorespiratory pulsations over the very low frequency (VLF) BOLD signal fluctuations which reflects to functional connectivity (FC). In this study, we examine the effect of sam...

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Autores principales: Huotari, Niko, Raitamaa, Lauri, Helakari, Heta, Kananen, Janne, Raatikainen, Ville, Rasila, Aleksi, Tuovinen, Timo, Kantola, Jussi, Borchardt, Viola, Kiviniemi, Vesa J., Korhonen, Vesa O.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6454039/
https://www.ncbi.nlm.nih.gov/pubmed/31001071
http://dx.doi.org/10.3389/fnins.2019.00279
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author Huotari, Niko
Raitamaa, Lauri
Helakari, Heta
Kananen, Janne
Raatikainen, Ville
Rasila, Aleksi
Tuovinen, Timo
Kantola, Jussi
Borchardt, Viola
Kiviniemi, Vesa J.
Korhonen, Vesa O.
author_facet Huotari, Niko
Raitamaa, Lauri
Helakari, Heta
Kananen, Janne
Raatikainen, Ville
Rasila, Aleksi
Tuovinen, Timo
Kantola, Jussi
Borchardt, Viola
Kiviniemi, Vesa J.
Korhonen, Vesa O.
author_sort Huotari, Niko
collection PubMed
description Low image sampling rates used in resting state functional magnetic resonance imaging (rs-fMRI) may cause aliasing of the cardiorespiratory pulsations over the very low frequency (VLF) BOLD signal fluctuations which reflects to functional connectivity (FC). In this study, we examine the effect of sampling rate on currently used rs-fMRI FC metrics. Ultra-fast fMRI magnetic resonance encephalography (MREG) data, sampled with TR 0.1 s, was downsampled to different subsampled repetition times (sTR, range 0.3–3 s) for comparisons. Echo planar k-space sampling (TR 2.15 s) and interleaved slice collection schemes were also compared against the 3D single shot trajectory at 2.2 s sTR. The quantified connectivity metrics included stationary spatial, time, and frequency domains, as well as dynamic analyses. Time domain methods included analyses of seed-based functional connectivity, regional homogeneity (ReHo), coefficient of variation, and spatial domain group level probabilistic independent component analysis (ICA). In frequency domain analyses, we examined fractional and amplitude of low frequency fluctuations. Aliasing effects were spatially and spectrally analyzed by comparing VLF (0.01–0.1 Hz), respiratory (0.12–0.35 Hz) and cardiac power (0.9–1.3 Hz) FFT maps at different sTRs. Quasi-periodic pattern (QPP) of VLF events were analyzed for effects on dynamic FC methods. The results in conventional time and spatial domain analyses remained virtually unchanged by the different sampling rates. In frequency domain, the aliasing occurred mainly in higher sTR (1–2 s) where cardiac power aliases over respiratory power. The VLF power maps suffered minimally from increasing sTRs. Interleaved data reconstruction induced lower ReHo compared to 3D sampling (p < 0.001). Gradient recalled echo-planar imaging (EPI BOLD) data produced both better and worse metrics. In QPP analyses, the repeatability of the VLF pulse detection becomes linearly reduced with increasing sTR. In conclusion, the conventional resting state metrics (e.g., FC, ICA) were not markedly affected by different TRs (0.1–3 s). However, cardiorespiratory signals showed strongest aliasing in central brain regions in sTR 1–2 s. Pulsatile QPP and other dynamic analyses benefit linearly from short TR scanning.
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spelling pubmed-64540392019-04-18 Sampling Rate Effects on Resting State fMRI Metrics Huotari, Niko Raitamaa, Lauri Helakari, Heta Kananen, Janne Raatikainen, Ville Rasila, Aleksi Tuovinen, Timo Kantola, Jussi Borchardt, Viola Kiviniemi, Vesa J. Korhonen, Vesa O. Front Neurosci Neuroscience Low image sampling rates used in resting state functional magnetic resonance imaging (rs-fMRI) may cause aliasing of the cardiorespiratory pulsations over the very low frequency (VLF) BOLD signal fluctuations which reflects to functional connectivity (FC). In this study, we examine the effect of sampling rate on currently used rs-fMRI FC metrics. Ultra-fast fMRI magnetic resonance encephalography (MREG) data, sampled with TR 0.1 s, was downsampled to different subsampled repetition times (sTR, range 0.3–3 s) for comparisons. Echo planar k-space sampling (TR 2.15 s) and interleaved slice collection schemes were also compared against the 3D single shot trajectory at 2.2 s sTR. The quantified connectivity metrics included stationary spatial, time, and frequency domains, as well as dynamic analyses. Time domain methods included analyses of seed-based functional connectivity, regional homogeneity (ReHo), coefficient of variation, and spatial domain group level probabilistic independent component analysis (ICA). In frequency domain analyses, we examined fractional and amplitude of low frequency fluctuations. Aliasing effects were spatially and spectrally analyzed by comparing VLF (0.01–0.1 Hz), respiratory (0.12–0.35 Hz) and cardiac power (0.9–1.3 Hz) FFT maps at different sTRs. Quasi-periodic pattern (QPP) of VLF events were analyzed for effects on dynamic FC methods. The results in conventional time and spatial domain analyses remained virtually unchanged by the different sampling rates. In frequency domain, the aliasing occurred mainly in higher sTR (1–2 s) where cardiac power aliases over respiratory power. The VLF power maps suffered minimally from increasing sTRs. Interleaved data reconstruction induced lower ReHo compared to 3D sampling (p < 0.001). Gradient recalled echo-planar imaging (EPI BOLD) data produced both better and worse metrics. In QPP analyses, the repeatability of the VLF pulse detection becomes linearly reduced with increasing sTR. In conclusion, the conventional resting state metrics (e.g., FC, ICA) were not markedly affected by different TRs (0.1–3 s). However, cardiorespiratory signals showed strongest aliasing in central brain regions in sTR 1–2 s. Pulsatile QPP and other dynamic analyses benefit linearly from short TR scanning. Frontiers Media S.A. 2019-04-02 /pmc/articles/PMC6454039/ /pubmed/31001071 http://dx.doi.org/10.3389/fnins.2019.00279 Text en Copyright © 2019 Huotari, Raitamaa, Helakari, Kananen, Raatikainen, Rasila, Tuovinen, Kantola, Borchardt, Kiviniemi and Korhonen. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Neuroscience
Huotari, Niko
Raitamaa, Lauri
Helakari, Heta
Kananen, Janne
Raatikainen, Ville
Rasila, Aleksi
Tuovinen, Timo
Kantola, Jussi
Borchardt, Viola
Kiviniemi, Vesa J.
Korhonen, Vesa O.
Sampling Rate Effects on Resting State fMRI Metrics
title Sampling Rate Effects on Resting State fMRI Metrics
title_full Sampling Rate Effects on Resting State fMRI Metrics
title_fullStr Sampling Rate Effects on Resting State fMRI Metrics
title_full_unstemmed Sampling Rate Effects on Resting State fMRI Metrics
title_short Sampling Rate Effects on Resting State fMRI Metrics
title_sort sampling rate effects on resting state fmri metrics
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6454039/
https://www.ncbi.nlm.nih.gov/pubmed/31001071
http://dx.doi.org/10.3389/fnins.2019.00279
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