Detailed Information on Publication Record
2024
Weak coupling of neurons enables very high-frequency and ultra-fast oscillations through the interplay of synchronized phase-shifts
PŘIBYLOVÁ, Lenka, Jan ŠEVČÍK, Veronika ECLEROVÁ, Petr KLIMEŠ, Milan BRÁZDIL et. al.Basic information
Original name
Weak coupling of neurons enables very high-frequency and ultra-fast oscillations through the interplay of synchronized phase-shifts
Authors
PŘIBYLOVÁ, Lenka (203 Czech Republic, guarantor, belonging to the institution), Jan ŠEVČÍK (203 Czech Republic, belonging to the institution), Veronika ECLEROVÁ (203 Czech Republic, belonging to the institution), Petr KLIMEŠ, Milan BRÁZDIL (203 Czech Republic, belonging to the institution) and Hil MEIJER
Edition
Network Neuroscience, MIT Press, 2024, 2472-1751
Other information
Language
English
Type of outcome
Článek v odborném periodiku
Field of Study
10102 Applied mathematics
Country of publisher
United States of America
Confidentiality degree
není předmětem státního či obchodního tajemství
References:
Impact factor
Impact factor: 4.700 in 2022
Organization unit
Faculty of Science
UT WoS
001188411200001
Keywords in English
Very High-Frequency Oscillations; Ultra-Fast Oscillations; Neuronal Network Model; Phase-Shifting Synchrony; Bifurcations; Epilepsy
Tags
International impact, Reviewed
Změněno: 18/4/2024 09:56, Mgr. Marie Šípková, DiS.
Abstract
V originále
Recently, in the past decade, high-frequency oscillations (HFOs), very high-frequency oscillations (VHFOs), and ultra-fast oscillations (UFOs) were reported in epileptic patients with drug-resistant epilepsy. However, to this day, the physiological origin of these events has yet to be understood. Our study establishes a mathematical framework based on bifurcation theory for investigating the occurrence of VHFOs and UFOs in depth EEG signals of patients with focal epilepsy, focusing on the potential role of reduced connection strength between neurons in an epileptic focus. We demonstrate that synchronization of a weakly coupled network can generate very and ultra high-frequency signals detectable by nearby microelectrodes. In particular, we show that a bistability region enables the persistence of phase-shift synchronized clusters of neurons. This phenomenon is observed for different hippocampal neuron models, including Morris-Lecar, Destexhe-Paré, and an interneuron model. The mechanism seems to be robust for small coupling, and it also persists with random noise affecting the external current. Our findings suggest that weakened neuronal connections could contribute to the production of oscillations with frequencies above 1000Hz, which could advance our understanding of epilepsy pathology and potentially improve treatment strategies. However, further exploration of various coupling types and complex network models is needed.
Links
GA22-28784S, research and development project |
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LX22NPO5107, research and development project |
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MUNI/A/1132/2022, interní kód MU |
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MUNI/G/1213/2022, interní kód MU |
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