Medical Faculty MMA. Grant Number: MFMMA/11/16‐18

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Medical Faculty MMA. Grant Number: MFMMA/11/16‐18

Authors

Publications

An Extremely Low Frequency Magnetic Field and Global Cerebral Ischemia Affect Pituitary ACTH and TSH Cells in Gerbils

Rauš Balind, Snežana; Manojlović-Stojanoski, Milica; Šošić-Jurjević, Branka ; Selaković, Vesna; Milošević, Verica; Petković, Branka

(John Wiley & Sons, Ltd, 2020)

TY  - JOUR
AU  - Rauš Balind, Snežana
AU  - Manojlović-Stojanoski, Milica
AU  - Šošić-Jurjević, Branka 
AU  - Selaković, Vesna
AU  - Milošević, Verica
AU  - Petković, Branka
PY  - 2020
UR  - https://onlinelibrary.wiley.com/doi/abs/10.1002/bem.22237
UR  - https://radar.ibiss.bg.ac.rs/handle/123456789/3570
UR  - https://radar.ibiss.bg.ac.rs/handle/123456789/3764
AB  - The neuroendocrine system can be modulated by a magnetic field and cerebral ischemia as external and internal stressors, respectively. This study deals with the separate or combined effects of an extremely low frequency (ELF) magnetic field (50 Hz, average magnetic field of 0.5 mT) for 7 days and global cerebral ischemia for 10 min on the morpho-functional features of pituitary adrenocorticotrophic (ACTH) and thyrotrophic (TSH) cells in 3-month-old gerbils. To determine the immediate and delayed effects of the applied stressors, measurements were made on the 7th and 14th days after the onset of the experiment. The ELF magnetic field and 10-min global cerebral ischemia, separately and particularly in combination, decreased (P < 0.05) the volume density of ACTH cells, while only in combination were intracellular ACTH content and plasma ACTH concentration increased (P < 0.05) on day 7. The ELF magnetic field elevated serum TSH concentration on day 7 and intracellular TSHβ content on day 14 (P < 0.05). Also, 10-min global cerebral ischemia alone increased serum TSH concentration (P < 0.05), while in combination with the ELF magnetic field it elevated (P < 0.05) intracellular TSHβ content on day 14. In conclusion, an ELF magnetic field and/or 10-min global cerebral ischemia can induce immediate and delayed stimulation of ACTH and TSH synthesis and secretion.
PB  - John Wiley & Sons, Ltd
T2  - Bioelectromagnetics
T1  - An Extremely Low Frequency Magnetic Field and Global Cerebral Ischemia Affect Pituitary ACTH and TSH Cells in Gerbils
IS  - 2
VL  - 41
DO  - 10.1002/bem.22237
SP  - 91
EP  - 103
ER  - 
@article{
author = "Rauš Balind, Snežana and Manojlović-Stojanoski, Milica and Šošić-Jurjević, Branka  and Selaković, Vesna and Milošević, Verica and Petković, Branka",
year = "2020",
abstract = "The neuroendocrine system can be modulated by a magnetic field and cerebral ischemia as external and internal stressors, respectively. This study deals with the separate or combined effects of an extremely low frequency (ELF) magnetic field (50 Hz, average magnetic field of 0.5 mT) for 7 days and global cerebral ischemia for 10 min on the morpho-functional features of pituitary adrenocorticotrophic (ACTH) and thyrotrophic (TSH) cells in 3-month-old gerbils. To determine the immediate and delayed effects of the applied stressors, measurements were made on the 7th and 14th days after the onset of the experiment. The ELF magnetic field and 10-min global cerebral ischemia, separately and particularly in combination, decreased (P < 0.05) the volume density of ACTH cells, while only in combination were intracellular ACTH content and plasma ACTH concentration increased (P < 0.05) on day 7. The ELF magnetic field elevated serum TSH concentration on day 7 and intracellular TSHβ content on day 14 (P < 0.05). Also, 10-min global cerebral ischemia alone increased serum TSH concentration (P < 0.05), while in combination with the ELF magnetic field it elevated (P < 0.05) intracellular TSHβ content on day 14. In conclusion, an ELF magnetic field and/or 10-min global cerebral ischemia can induce immediate and delayed stimulation of ACTH and TSH synthesis and secretion.",
publisher = "John Wiley & Sons, Ltd",
journal = "Bioelectromagnetics",
title = "An Extremely Low Frequency Magnetic Field and Global Cerebral Ischemia Affect Pituitary ACTH and TSH Cells in Gerbils",
number = "2",
volume = "41",
doi = "10.1002/bem.22237",
pages = "91-103"
}
Rauš Balind, S., Manojlović-Stojanoski, M., Šošić-Jurjević, B., Selaković, V., Milošević, V.,& Petković, B.. (2020). An Extremely Low Frequency Magnetic Field and Global Cerebral Ischemia Affect Pituitary ACTH and TSH Cells in Gerbils. in Bioelectromagnetics
John Wiley & Sons, Ltd., 41(2), 91-103.
https://doi.org/10.1002/bem.22237
Rauš Balind S, Manojlović-Stojanoski M, Šošić-Jurjević B, Selaković V, Milošević V, Petković B. An Extremely Low Frequency Magnetic Field and Global Cerebral Ischemia Affect Pituitary ACTH and TSH Cells in Gerbils. in Bioelectromagnetics. 2020;41(2):91-103.
doi:10.1002/bem.22237 .
Rauš Balind, Snežana, Manojlović-Stojanoski, Milica, Šošić-Jurjević, Branka , Selaković, Vesna, Milošević, Verica, Petković, Branka, "An Extremely Low Frequency Magnetic Field and Global Cerebral Ischemia Affect Pituitary ACTH and TSH Cells in Gerbils" in Bioelectromagnetics, 41, no. 2 (2020):91-103,
https://doi.org/10.1002/bem.22237 . .
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An Extremely Low Frequency Magnetic Field and Global Cerebral Ischemia Affect Pituitary ACTH and TSH Cells in Gerbils

Rauš Balind, Snežana; Manojlović-Stojanoski, Milica; Šošić-Jurjević, Branka ; Selaković, Vesna; Milošević, Verica; Petković, Branka

(John Wiley & Sons, Ltd, 2020)

TY  - JOUR
AU  - Rauš Balind, Snežana
AU  - Manojlović-Stojanoski, Milica
AU  - Šošić-Jurjević, Branka 
AU  - Selaković, Vesna
AU  - Milošević, Verica
AU  - Petković, Branka
PY  - 2020
UR  - https://onlinelibrary.wiley.com/doi/abs/10.1002/bem.22237
UR  - https://radar.ibiss.bg.ac.rs/handle/123456789/3570
AB  - The neuroendocrine system can be modulated by a magnetic field and cerebral ischemia as external and internal stressors, respectively. This study deals with the separate or combined effects of an extremely low frequency (ELF) magnetic field (50 Hz, average magnetic field of 0.5 mT) for 7 days and global cerebral ischemia for 10 min on the morpho-functional features of pituitary adrenocorticotrophic (ACTH) and thyrotrophic (TSH) cells in 3-month-old gerbils. To determine the immediate and delayed effects of the applied stressors, measurements were made on the 7th and 14th days after the onset of the experiment. The ELF magnetic field and 10-min global cerebral ischemia, separately and particularly in combination, decreased (P < 0.05) the volume density of ACTH cells, while only in combination were intracellular ACTH content and plasma ACTH concentration increased (P < 0.05) on day 7. The ELF magnetic field elevated serum TSH concentration on day 7 and intracellular TSHβ content on day 14 (P < 0.05). Also, 10-min global cerebral ischemia alone increased serum TSH concentration (P < 0.05), while in combination with the ELF magnetic field it elevated (P < 0.05) intracellular TSHβ content on day 14. In conclusion, an ELF magnetic field and/or 10-min global cerebral ischemia can induce immediate and delayed stimulation of ACTH and TSH synthesis and secretion.
PB  - John Wiley & Sons, Ltd
T2  - Bioelectromagnetics
T1  - An Extremely Low Frequency Magnetic Field and Global Cerebral Ischemia Affect Pituitary ACTH and TSH Cells in Gerbils
IS  - 2
VL  - 41
DO  - 10.1002/bem.22237
SP  - 91
EP  - 103
ER  - 
@article{
author = "Rauš Balind, Snežana and Manojlović-Stojanoski, Milica and Šošić-Jurjević, Branka  and Selaković, Vesna and Milošević, Verica and Petković, Branka",
year = "2020",
abstract = "The neuroendocrine system can be modulated by a magnetic field and cerebral ischemia as external and internal stressors, respectively. This study deals with the separate or combined effects of an extremely low frequency (ELF) magnetic field (50 Hz, average magnetic field of 0.5 mT) for 7 days and global cerebral ischemia for 10 min on the morpho-functional features of pituitary adrenocorticotrophic (ACTH) and thyrotrophic (TSH) cells in 3-month-old gerbils. To determine the immediate and delayed effects of the applied stressors, measurements were made on the 7th and 14th days after the onset of the experiment. The ELF magnetic field and 10-min global cerebral ischemia, separately and particularly in combination, decreased (P < 0.05) the volume density of ACTH cells, while only in combination were intracellular ACTH content and plasma ACTH concentration increased (P < 0.05) on day 7. The ELF magnetic field elevated serum TSH concentration on day 7 and intracellular TSHβ content on day 14 (P < 0.05). Also, 10-min global cerebral ischemia alone increased serum TSH concentration (P < 0.05), while in combination with the ELF magnetic field it elevated (P < 0.05) intracellular TSHβ content on day 14. In conclusion, an ELF magnetic field and/or 10-min global cerebral ischemia can induce immediate and delayed stimulation of ACTH and TSH synthesis and secretion.",
publisher = "John Wiley & Sons, Ltd",
journal = "Bioelectromagnetics",
title = "An Extremely Low Frequency Magnetic Field and Global Cerebral Ischemia Affect Pituitary ACTH and TSH Cells in Gerbils",
number = "2",
volume = "41",
doi = "10.1002/bem.22237",
pages = "91-103"
}
Rauš Balind, S., Manojlović-Stojanoski, M., Šošić-Jurjević, B., Selaković, V., Milošević, V.,& Petković, B.. (2020). An Extremely Low Frequency Magnetic Field and Global Cerebral Ischemia Affect Pituitary ACTH and TSH Cells in Gerbils. in Bioelectromagnetics
John Wiley & Sons, Ltd., 41(2), 91-103.
https://doi.org/10.1002/bem.22237
Rauš Balind S, Manojlović-Stojanoski M, Šošić-Jurjević B, Selaković V, Milošević V, Petković B. An Extremely Low Frequency Magnetic Field and Global Cerebral Ischemia Affect Pituitary ACTH and TSH Cells in Gerbils. in Bioelectromagnetics. 2020;41(2):91-103.
doi:10.1002/bem.22237 .
Rauš Balind, Snežana, Manojlović-Stojanoski, Milica, Šošić-Jurjević, Branka , Selaković, Vesna, Milošević, Verica, Petković, Branka, "An Extremely Low Frequency Magnetic Field and Global Cerebral Ischemia Affect Pituitary ACTH and TSH Cells in Gerbils" in Bioelectromagnetics, 41, no. 2 (2020):91-103,
https://doi.org/10.1002/bem.22237 . .
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