Institute of Biochemistry and Biophysics (IBB), University of Tehran, Tehran, Iran.
Department of Embryology at Reproduction Biomedicine Research Center, Royan Institute for Reproductive Biomedicine, ACER, Tehran, Iran.
BMC Mol Cell Biol. 2019 Aug 29;20(1):41. doi: 10.1186/s12860-019-0224-1.
Microtubule proteins are able to produce electromagnetic fields and have an important role in memory formation, and learning. Therefore, microtubules have the potential to be affected by exogenous electromagnetic fields. This study aimed to examine the comparison of microtubule polymerization and its structural behavior in brain and sperm affected by 50 Hz extremely low-frequency electromagnetic field (ELEF).
Twenties adult male rats were randomly and equally divided into control and experimental groups, to evaluate the effect of 50 Hz ELEF on the sperm and brain functions. Plus-maze, serum testosterone and corticosterone, and sperm evaluation were performed. Next, the semen and brain samples were obtained, and they were divided into four experimental groups for investigation of microtubule polymerization. There was no significant difference in testosterone and, corticosterone levels, anxiety behaviors, and sperm morphology between control and ELEF-exposure groups. The sperm viability, total and progressive motility were significantly higher in the ELEF-exposed group than that of the control group. The microtubule polymerization in sperm ELEF was significantly higher than in other groups. The secondary and tertiary structures of tubulins were significantly affected in the brain, and sperm ELEF groups.
It seems that the polymerization of microtubules and conformational changes of tubulin dimers are improved by ELEF application.
微管蛋白能够产生电磁场,并在记忆形成和学习中发挥重要作用。因此,微管有可能受到外源性电磁场的影响。本研究旨在比较 50Hz 极低频电磁场(ELEF)对大脑和精子中微管聚合及其结构行为的影响。
20 只成年雄性大鼠被随机平均分为对照组和实验组,以评估 50HzELEF 对精子和大脑功能的影响。进行了高架十字迷宫、血清睾酮和皮质酮以及精子评估。然后,获得精液和脑组织样本,并将其分为四个实验组,以研究微管聚合。对照组和 ELEF 暴露组之间的睾酮和皮质酮水平、焦虑行为和精子形态无显著差异。ELEF 暴露组的精子活力、总活力和前向运动活力均显著高于对照组。精子的微管聚合明显高于其他组。脑和精子 ELEF 组的微管蛋白二聚体的二级和三级结构明显受到影响。
ELEF 的应用似乎可以提高微管的聚合和微管蛋白二聚体的构象变化。