journal article Open Access Jun 01, 2024

Inverted U-shape-like functional connectivity alterations in cognitive resting-state networks depending on exercise intensity: An fMRI study

View at Publisher Save 10.1016/j.bandc.2024.106156
Topics

No keywords indexed for this article. Browse by subject →

References
82
[1]
Anzeneder "Dose–response relation between the duration of a cognitively challenging bout of physical exercise and children’s cognition" Scandinavian Journal of Medicine & Science in Sports (2023) 10.1111/sms.14370
[2]
Arnsten "Catecholamine influences on dorsolateral prefrontal cortical networks" Biological Psychiatry (2011) 10.1016/j.biopsych.2011.01.027
[3]
Basso "The effects of acute exercise on mood, cognition, neurophysiology, and neurochemical pathways: A review" Brain Plasticity (Amsterdam, Netherlands) (2017) 10.3233/bpl-160040
[4]
Beckmann "Group comparison of resting-state FMRI data using multi-subject ICA and dual regression" NeuroImage (2009) 10.1016/s1053-8119(09)71511-3
[5]
Beckmann "Probabilistic independent component analysis for functional magnetic resonance imaging" IEEE Transactions on Medical Imaging (2004) 10.1109/tmi.2003.822821
[6]
Functional connectivity in the motor cortex of resting human brain using echo‐planar mri

Bharat Biswal, F. Zerrin Yetkin, Victor M. Haughton et al.

Magnetic Resonance in Medicine 1995 10.1002/mrm.1910340409
[7]
Boecker "Fractional amplitude of low-frequency fluctuations associated with μ-opioid and dopamine receptor distributions in the central nervous system after high-intensity exercise bouts" Frontiers in Neuroimaging (2024) 10.3389/fnimg.2024.1332384
[8]
Booth "Assessment of physical activity: An international perspective" Research Quarterly for Exercise and Sport (2000) 10.1080/02701367.2000.11082794
[9]
Borg, G. (1998). Borg’s Perceived Exertion And Pain Scales. In Human Kinetics.
[10]
Cerebellar networks with the cerebral cortex and basal ganglia

Andreea C. Bostan, Richard P. Dum, Peter L. Strick

Trends in Cognitive Sciences 2013 10.1016/j.tics.2013.03.003
[11]
Briggs, R. G., Khan, A. B., Chakraborty, A. R., Abraham, C. J., Anderson, C. D., Karas, P. J., Bonney, P. A., Palejwala, A. H., Conner, A. K., O’Donoghue, D. L., & Sughrue, M. E. (2020). Anatomy and White Matter Connections of the Superior Frontal Gyrus. Clinical Anatomy (New York, N.Y.), 33(6), 823–832. https://doi.org/10.1002/ca.23523. 10.1002/ca.23523
[12]
Chang "The effects of acute exercise on cognitive performance: A meta-analysis" Brain Research (2012) 10.1016/j.brainres.2012.02.068
[13]
Chang "Antecedent acute cycling exercise affects attention control: An ERP study using attention network test" Frontiers in Human Neuroscience (2015) 10.3389/fnhum.2015.00156
[14]
Chen "Linear mixed-effects modeling approach to FMRI group analysis" NeuroImage (2013) 10.1016/j.neuroimage.2013.01.047
[15]
Chenot "Functional connectivity within the fronto-parietal network predicts complex task performance: A fNIRS study" Frontiers in Neuroergonomics (2021) 10.3389/fnrgo.2021.718176
[16]
Cardiovascular fitness, cortical plasticity, and aging

Stanley J. Colcombe, Arthur F. Kramer, KIRK I. ERICKSON et al.

Proceedings of the National Academy of Sciences 10.1073/pnas.0400266101
[17]
Cooper "Anatomical and physiological mechanisms of arousal, with special reference to the effects of exercise" Ergonomics (1973) 10.1080/00140137308924551
[18]
Control of goal-directed and stimulus-driven attention in the brain

Maurizio Corbetta, Gordon L. Shulman

Nature Reviews Neuroscience 2002 10.1038/nrn755
[19]
Cox, R. W., Chen, G., Glen, D. R., Reynolds, R. C., & Taylor, P. A. (2017a). fMRI clustering and false-positive rates. Proceedings of the National Academy of Sciences of the United States of America, 114(17), E3370–E3371. https://doi.org/10.1073/pnas.1614961114. 10.1073/pnas.1614961114
[20]
Cox "FMRI clustering in AFNI: False-positive rates Redux" Brain Connectivity (2017) 10.1089/brain.2016.0475
[21]
Damoiseaux "Consistent resting-state networks across healthy subjects" Proceedings of the National Academy of Sciences of the United States of America (2006) 10.1073/pnas.0601417103
[22]
Davey "Physical exertion and mental performance" Ergonomics (1973) 10.1080/00140137308924550
[23]
Guidelines to Classify Subject Groups in Sport-Science Research

Kevin De Pauw, Bart Roelands, Stephen S. Cheung et al.

International Journal of Sports Physiology and Per... 2013 10.1123/ijspp.8.2.111
[24]
Dietrich "The reticular-activating hypofrontality (RAH) model of acute exercise" Neuroscience and Biobehavioral Reviews (2011) 10.1016/j.neubiorev.2011.02.001
[25]
Heterogeneity within the frontoparietal control network and its relationship to the default and dorsal attention networks

Matthew L. Dixon, Alejandro de la Vega, Caitlin Mills et al.

Proceedings of the National Academy of Sciences 2018 10.1073/pnas.1715766115
[26]
Doucet "Evaluation of the spatial variability in the major resting-state networks across human brain functional atlases" Human Brain Mapping (2019) 10.1002/hbm.24722
[27]
Functions of the left superior frontal gyrus in humans: a lesion study

F. d. Boisgueheneuc, R. Levy, E. Volle et al.

Brain 2006 10.1093/brain/awl244
[28]
Testing anatomically specified hypotheses in functional imaging using cytoarchitectonic maps

Simon B. Eickhoff, Stefan Heim, Karl Zilles et al.

NeuroImage 2006 10.1016/j.neuroimage.2006.04.204
[29]
Eickhoff "Functional Connectivity" (2015)
[30]
Eickhoff "Assignment of functional activations to probabilistic cytoarchitectonic areas revisited" NeuroImage (2007) 10.1016/j.neuroimage.2007.03.060
[31]
Eickhoff "A new SPM toolbox for combining probabilistic cytoarchitectonic maps and functional imaging data" NeuroImage (2005) 10.1016/j.neuroimage.2004.12.034
[32]
Eriksen "Effects of noise letters upon the identification of a target letter in a nonsearch task" Perception & Psychophysics (1974) 10.3758/bf03203267
[33]
MRIQC: Advancing the automatic prediction of image quality in MRI from unseen sites

Oscar Esteban, Daniel Birman, Marie Schaer et al.

PLoS ONE 2017 10.1371/journal.pone.0184661
[34]
Esteban "fMRIPrep: A robust preprocessing pipeline for functional MRI" Nature Methods (2019) 10.1038/s41592-018-0235-4
[35]
Fan "Testing the efficiency and independence of attentional networks" Journal of Cognitive Neuroscience (2002) 10.1162/089892902317361886
[36]
Unbiased nonlinear average age-appropriate brain templates from birth to adulthood

VS Fonov, AC Evans, RC McKinstry et al.

NeuroImage 2009 10.1016/s1053-8119(09)70884-5
[37]
Friston "Functional and effective connectivity in neuroimaging: A synthesis" Human Brain Mapping (1994) 10.1002/hbm.460020107
[38]
Gorgolewski "Nipype: A flexible, lightweight and extensible neuroimaging data processing framework in python" Frontiers in Neuroinformatics (2011) 10.3389/fninf.2011.00013
[39]
Gutin "Exercise-induced activation and human performance: A review" Research Quarterly. American Association for Health, Physical Education and Recreation (1973) 10.1080/10671188.1973.10615204
[40]
Habas "Functional connectivity of the cognitive cerebellum" Frontiers in Systems Neuroscience (2021) 10.3389/fnsys.2021.642225
[41]
Hautzinger (1994)
[42]
Hsieh "Systematic review of the acute and chronic effects of high-intensity interval training on executive function across the lifespan" Journal of Sports Sciences (2021) 10.1080/02640414.2020.1803630
[43]
Huertas "Functioning of the attentional networks at rest vs. during acute bouts of aerobic exercise" Journal of Sport & Exercise Psychology (2011) 10.1123/jsep.33.5.649
[44]
Ishihara "The effects of acute aerobic exercise on executive function: A systematic review and meta-analysis of individual participant data" Neuroscience and Biobehavioral Reviews (2021) 10.1016/j.neubiorev.2021.06.026
[45]
Kirby "Chapter 11 - Cognitive Constructs and Individual Differences Underlying ADHD and Dyslexia: A Cognitive Mosaic Approach" (2015)
[46]
Kleinert "Adjektivliste zur Erfassung der Wahrgenommenen Körperlichen Verfassung (WKV)" Zeitschrift Für Sportpsychologie (2006) 10.1026/1612-5010.13.4.156
[47]
Ko "Changes in functional connectivity between default mode network and attention network in response to changes in aerobic exercise intensity" Psychiatry Investigation (2023) 10.30773/pi.2022.0245
[48]
Consensus Paper: The Cerebellum's Role in Movement and Cognition

Leonard F. Koziol, Deborah Budding, Nancy Andreasen et al.

The Cerebellum 2014 10.1007/s12311-013-0511-x
[49]
Krohne "Untersuchungen mit einer deutschen Version der “Positive and Negative Affect Schedule” (PANAS)" Diagnostica (1996)
[50]
Lambourne "The effect of exercise-induced arousal on cognitive task performance: A meta-regression analysis" Brain Research (2010) 10.1016/j.brainres.2010.03.091

Showing 50 of 82 references

Metrics
9
Citations
82
References
Details
Published
Jun 01, 2024
Vol/Issue
177
Pages
106156
License
View
Cite This Article
Luisa Bodensohn, Angelika Maurer, Marcel Daamen, et al. (2024). Inverted U-shape-like functional connectivity alterations in cognitive resting-state networks depending on exercise intensity: An fMRI study. Brain and Cognition, 177, 106156. https://doi.org/10.1016/j.bandc.2024.106156
Related

You May Also Like

The N2 in go/no-go tasks reflects conflict monitoring not response inhibition

Franc C.L. Donkers, Geert J.M. van Boxtel · 2004

632 citations

The measurement of handedness

Loren J. Chapman, Jean P. Chapman · 1987

513 citations

Eating with our eyes: From visual hunger to digital satiation

Charles Spence, Katsunori Okajima · 2016

355 citations