This paper aims to implement average head models of Korean males and investigate age-related differences in the brain for exposure from radiation from mobile phones. Four male head models composed of a total of 69 structures were developed through a statistical investigation of the anatomical morphology for the age groups of 6, 9, 15 and 20-24 years in age, which are named KR-6, KR-9, KR-15, and KR-22 herein. Three numerical bar phone models with a dual-band built-in antenna were applied to calculate the specific absorption rate (SAR) in the brain; the body lengths of models M and M have the mean value and upper 5th percentile value of commercial bar phone models, respectively, with an antenna at the bottom, whereas M has an antenna on top of the phone body, which is the same as in M but rotated 180°. The cheek and tilt positions were employed for SAR simulations. As a result, a higher peak spatial-average SAR (psSAR) was observed in the brain for the child groups of KR-6 and KR-9 than for the adult groups of KR-15 and KR-22. In most configurations, the position-averaged psSAR in the child brain was 62% (M , 835 MHz), 61% (M , 835 MHz), 102% (M , 1850 MHz), 108% (M , 1850 MHz), and 125% (M , 1850 MHz) higher than in the adult brain. The higher frequency of 1850 MHz showed a wider difference in the brain psSAR between the child and adult groups owing to the shorter penetration depth. When a long phone with an antenna at the bottom operates at a higher frequency, it significantly reduces the brain exposure.
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http://dx.doi.org/10.1088/1361-6560/aafcdc | DOI Listing |
Int J Mol Sci
August 2024
Department of Pharmacology, College of Medicine, Dankook University, Cheonan 31116, Republic of Korea.
The widespread use of wireless communication devices has necessitated unavoidable exposure to radiofrequency electromagnetic fields (RF-EMF). In particular, increasing RF-EMF exposure among children is primarily driven by mobile phone use. Therefore, this study investigated the effects of 1850 MHz RF-EMF exposure at a specific absorption rate of 4.
View Article and Find Full Text PDFMagn Reson Med
July 2022
Centre for Hyperpolarisation in Magnetic Resonance (CHyM), University of York, York, United Kingdom.
Purpose: Enabling drug tracking (distribution/specific pathways) with magnetic resonance spectroscopy requires manipulation (via hyperpolarization) of spin state populations and targets with sufficiently long magnetic lifetimes to give the largest possible window of observation. Here, we demonstrate how the proton resonances of a group of thienopyridazines (with known anticancer properties), can be amplified using the para-hydrogen (p-H ) based signal amplification by reversible exchange (SABRE) hyperpolarization technique.
Methods: Thienopyridazine isomers, including a H version, were synthesized in house.
Arch Endocrinol Metab
August 2020
Programa de Pós-graduação em Ciências Médicas, Faculdade de Medicina, Universidade Federal do Ceará, Fortaleza, CE, Brasil.
Objective This study aimed to determine the thyroid-stimulating hormone (TSH) reference interval (RI) and to assess the influence of the use of thyroid ultrasonography (TUS) on reference individual selection from a healthy adult population in Fortaleza, Brazil. Subjects and methods This cross-sectional study recruited patients (N = 272; age = 18-50 years) with normal thyroid function (NTF) and placed them in three groups according to their test results: NTF (n = 272; all participants), TUS (n = 170; participants who underwent thyroid US), RI (n = 124; reference individuals with normal TSH levels). TSH, FT4, TT3, TgAb, and TPOAb concentrations were determined by electrochemiluminescence assay.
View Article and Find Full Text PDFPhys Med Biol
February 2019
Radio Technology Research Department, Electronics and Telecommunications Research Institute (ETRI), Daejeon, 305-700, Republic of Korea. Author to whom any correspondence should be addressed.
This paper aims to implement average head models of Korean males and investigate age-related differences in the brain for exposure from radiation from mobile phones. Four male head models composed of a total of 69 structures were developed through a statistical investigation of the anatomical morphology for the age groups of 6, 9, 15 and 20-24 years in age, which are named KR-6, KR-9, KR-15, and KR-22 herein. Three numerical bar phone models with a dual-band built-in antenna were applied to calculate the specific absorption rate (SAR) in the brain; the body lengths of models M and M have the mean value and upper 5th percentile value of commercial bar phone models, respectively, with an antenna at the bottom, whereas M has an antenna on top of the phone body, which is the same as in M but rotated 180°.
View Article and Find Full Text PDFSci Rep
January 2019
Department of Pharmacology, College of Medicine, Dankook University, Cheonan-si, Chungnam, South Korea.
In the present study, we measured the spontaneous post synaptic currents (sPSCs) at the post synaptic principle cells of the medial nucleus of the trapezoid body (MNTB) in early postnatal mice after exposure to 1850 MHz radiofrequency electromagnetic fields (RF-EMF). sPSC frequencies and amplitudes were significantly increased in the RF-EMF exposed group. Moreover, the number of synaptic vesicles in the calyx of Held was significantly increased in presynaptic nerve terminals.
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