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Synchronization between geomagnetic field variations and human heart rate parameters

Possible Role of Autonomic Nervous System

Bibliographic Data

ID7759874
AuthorsTatiana A Zenchenko (0000-0002-0520-2029, Space Research Institute), Lilia V Poskotinova (0000-0002-7537-0837, Northern (Arctic) Federal University), Nataliya I Khorseva (0000-0002-3444-0050, Institute of Biochemical Physics NM Emanuel), Tamara K Breus (0000-0003-4057-0844, Space Research Institute)
Year2025
Volume31
Issue10
Pages750-767
Publication date2025-06-13
Peer ReviewedYes
Open AccessYes
TypeARTICLE
VenueEkologiya Cheloveka (Human Ecology (JOURNAL)
Journal identifiersISSN: 1728-0869 • E-ISSN: 2949-1444
PublisherECO-Vector LLC (PUBLISHER • RU)
DOI10.17816/humeco643117
OpenAlexW4412397556
LanguageEN
References cited32

BACKGROUND: Geomagnetic field variations are a significant environmental factor influencing human well-being and physiological state, particularly the cardiovascular system. However, both the biophysical mechanisms underlying this influence and its phenomenological patterns across various spatiotemporal scales remain poorly understood. This study continues the investigation of the previously identified effect of synchronization between resting heart rate oscillations and geomagnetic field variations within the millihertz frequency range (periods of 3–40 minutes), referred to as the “biogeosynchronization effect.” AIM: To evaluate the possible role of the autonomic nervous system as a mediating pathway in the human body’s response to geomagnetic field variations. METHODS: From 2012 to 2024, a total of 673 experiments involving resting-state electrocardiographic interval recordings were conducted in two groups: eight healthy volunteers (group 1), each undergoing multiple sessions lasting 100–120 minutes, and a cohort of 39 individuals (group 2), each with a single 60-minute session. The frequency of biogeosynchronization effects in minute-by-minute time series of heart rate and heart rate variability parameters was compared. Cross-correlation and wavelet analysis methods were employed. RESULTS: Across the entire dataset, synchronization between heart rate parameters and components of the geomagnetic field vector occurred in 32% of cases, whereas heart rate variability parameters showed synchronization in only 9%–17%, according to correlation analysis, representing a two-fold or greater difference. Based on wavelet spectrum similarity, heart rate synchronization was observed in 40% of cases and heart rate variability parameters synchronization in 24%–28%. Individual distributions for each subject in group 1 and pooled results for group 2 revealed similar patterns. CONCLUSION: The biogeosynchronization effect appears significantly more frequently in heart rate changes (p 0.001) than in heart rate variability parameters, both in repeated individual recordings and in group-level analysis

Autonomic nervous system · Biology · Blood pressure · Cardiology · Earth's magnetic field · Heart rate · Heart rate variability · Magnetic field · Physics · Telecommunications · Biofield Effects and Biophysics · Computer Science · Heart Rate Variability and Autonomic Control · Medicine · Neuroscience · Non-Invasive Vital Sign Monitoring · Internal Medicine

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