| Literature DB >> 25462671 |
Fen-Lan Luo1, Nian Yang1, Chao He1, Hong-Li Li2, Chao Li1, Fang Chen1, Jia-Xiang Xiong1, Zhi-An Hu3, Jun Zhang4.
Abstract
Previous studies have revealed that extremely low frequency electromagnetic field (ELF-EMF) exposure affects neuronal dendritic spine density and NMDAR and AMPAR subunit expressions in the entorhinal cortex (EC). Although calcium signaling has a critical role in control of EC neuronal functions, however, it is still unclear whether the ELF-EMF exposure affects the EC neuronal calcium homeostasis. In the present study, using whole-cell recording and calcium imaging, we record the whole-cell inward currents that contain the voltage-gated calcium currents and show that ELF-EMF (50Hz, 1mT or 3mT, lasting 24h) exposure does not influence these currents. Next, we specifically isolate the high-voltage activated (HVA) and low-voltage activated (LVA) calcium channels-induced currents. Similarly, the activation and inactivation characteristics of these membrane calcium channels are also not influenced by ELF-EMF. Importantly, ELF-EMF exposure reduces the maximum amplitude of the high-K(+)-evoked calcium elevation in EC neurons, which is abolished by thapsigargin, a Ca(2+) ATPase inhibitor, to empty the intracellular calcium stores of EC neurons. Together, these findings indicate that ELF-EMF exposure specifically influences the intracellular calcium dynamics of cultural EC neurons via a calcium channel-independent mechanism.Entities:
Keywords: Calcium channel; Calcium dynamics; Entorhinal cortex; Extremely low frequency electromagnetic fields
Mesh:
Substances:
Year: 2014 PMID: 25462671 DOI: 10.1016/j.envres.2014.09.023
Source DB: PubMed Journal: Environ Res ISSN: 0013-9351 Impact factor: 6.498