Topology, Cross-Frequency, and Same-Frequency Band Interactions Shape the Generation of Phase-Amplitude Coupling in a Neural Mass Model of a Cortical Column

被引:24
|
作者
Sotero, Roberto C. [1 ]
机构
[1] Univ Calgary, Dept Radiol, Hotchkiss Brain Inst, Calgary, AB, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
FUNCTIONAL CONNECTIVITY; NEURONAL OSCILLATIONS; BIFURCATION-ANALYSIS; GRANGER CAUSALITY; GAMMA; THETA; EEG; CORTEX; ALPHA; INTERNEURONS;
D O I
10.1371/journal.pcbi.1005180
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Phase-amplitude coupling (PAC), a type of cross-frequency coupling (CFC) where the phase of a low-frequency rhythm modulates the amplitude of a higher frequency, is becoming an important indicator of information transmission in the brain. However, the neurobiological mechanisms underlying its generation remain undetermined. A realistic, yet tractable computational model of the phenomenon is thus needed. Here we analyze a neural mass model of a cortical column, comprising fourteen neuronal populations distributed across four layers (L2/3, L4, L5 and L6). A control analysis showed that the conditional transfer entropy (cTE) measure is able to correctly estimate the flow of information between neuronal populations. Then, we computed cTE from the phases to the amplitudes of the oscillations generated in the cortical column. This approach provides information regarding directionality by distinguishing PAC from APC (amplitude-phase coupling), i.e. the information transfer from amplitudes to phases, and can be used to estimate other types of CFC such as amplitude-amplitude coupling (AAC) and phase-phase coupling (PPC). While experiments often only focus on one or two PAC combinations (e.g., theta-gamma or alpha-gamma), we found that a cortical column can simultaneously generate almost all possible PAC combinations, depending on connectivity parameters, time constants, and external inputs. PAC interactions with and without an anatomical equivalent (direct and indirect interactions, respectively) were analyzed. We found that the strength of PAC between two populations was strongly correlated with the strength of the effective connections between the populations and, on average, did not depend on whether the PAC connection was direct or indirect. When considering a cortical column circuit as a complex network, we found that neuronal populations making indirect PAC connections had, on average, higher local clustering coefficient, efficiency, and betweenness centrality than populations making direct connections and populations not involved in PAC connections. This suggests that their interactions were more effective when transmitting information. Since approximately 60% of the obtained interactions represented indirect connections, our results highlight the importance of the topology of cortical circuits for the generation of the PAC phenomenon. Finally, our results demonstrated that indirect PAC interactions can be explained by a cascade of direct CFC and same-frequency band interactions, suggesting that PAC analysis of experimental data should be accompanied by the estimation of other types of frequency interactions for an integrative understanding of the phenomenon.
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页数:29
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  • [1] Multivariate Phase-Amplitude Cross-Frequency Coupling in Neurophysiological Signals
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    Cadieu, Charles F.
    Koepsell, Kilian
    Knight, Robert T.
    Carmena, Jose M.
    [J]. IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2012, 59 (01) : 8 - 11
  • [2] A critical note on the definition of phase-amplitude cross-frequency coupling
    Ozkurt, Tolga Esat
    Schnitzler, Alfons
    [J]. JOURNAL OF NEUROSCIENCE METHODS, 2011, 201 (02) : 438 - 443
  • [3] Bifurcation Analysis on Phase-Amplitude Cross-Frequency Coupling in Neural Networks with Dynamic Synapses
    Sase, Takumi
    Katori, Yuichi
    Komuro, Motomasa
    Aihara, Kazuyuki
    [J]. FRONTIERS IN COMPUTATIONAL NEUROSCIENCE, 2017, 11
  • [5] Phase-clustering bias in phase-amplitude cross-frequency coupling and its removal
    van Driel, Joram
    Cox, Roy
    Cohen, Michael X.
    [J]. JOURNAL OF NEUROSCIENCE METHODS, 2015, 254 : 60 - 72
  • [6] Cross-frequency Phase-Amplitude Coupling as a Mechanism for Temporal Orienting of Attention in Childhood
    Mento, Giovanni
    Astle, Duncan E.
    Scerif, Gaia
    [J]. JOURNAL OF COGNITIVE NEUROSCIENCE, 2018, 30 (04) : 594 - 602
  • [7] Investigation of Cross-Frequency Phase-Amplitude Coupling in Visuomotor Networks using Magnetoencephalography
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    [J]. 2012 ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE AND BIOLOGY SOCIETY (EMBC), 2012, : 1550 - 1553
  • [8] Statistically Reliable and Fast Direct Estimation of Phase-Amplitude Cross-Frequency Coupling
    Ozkurt, Tolga Esat
    [J]. IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2012, 59 (07) : 1943 - 1950
  • [9] Cross-frequency phase-amplitude coupling in repetitive movements in patients with Parkinson's disease
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    Muehlberg, Christoph
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    Fricke, Christopher
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    Knoesche, Thomas R.
    Classen, Joseph
    [J]. JOURNAL OF NEUROPHYSIOLOGY, 2022, 127 (06) : 1606 - 1621
  • [10] Phase-Amplitude Cross-Frequency Coupling in EEG-derived Cortical Time Series upon an Auditory Perception Task
    Papadaniil, Chrysa D.
    Kosmidou, Vasiliki E.
    Tsolaki, Anthoula
    Tsolaki, Magda
    Kompatsiaris, Ioannis
    Hadjileontiadis, Leontios J.
    [J]. 2015 37TH ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE AND BIOLOGY SOCIETY (EMBC), 2015, : 4150 - 4153