Akan Zafer, Aksu Burak, Tulunay Aysin, Bilsel Serpil, Inhan-Garip Ayse
Department of Biophysics, School of Medicine, Marmara University, Istanbul, Turkey.
Bioelectromagnetics. 2010 Dec;31(8):603-12. doi: 10.1002/bem.20607. Epub 2010 Aug 31.
This study aimed to determine the effect of extremely low-frequency electromagnetic fields (ELF-EMF) on the physiological response of phagocytes to an infectious agent. THP-1 cells (human monocytic leukemia cell line) were cultured and 50 Hz, 1 mT EMF was applied for 4-6 h to cells induced with Staphylococcus aureus or interferon gamma/lipopolysaccharide (IFγ/LPS). Alterations in nitric oxide (NO), inducible nitric oxide synthase (iNOS) levels, heat shock protein 70 levels (hsp70), cGMP levels, caspase-9 activation, and the growth rate of S. aureus were determined. The growth curve of exposed bacteria was lower than the control. Field application increased NO levels. The increase was more prominent for S. aureus-induced cells and appeared earlier than the increase in cells without field application. However, a slight decrease was observed in iNOS levels. Increased cGMP levels in response to field application were closely correlated with increased NO levels. ELF-EMF alone caused increased hsp70 levels in a time-dependent manner. When cells were induced with S. aureus or IFγ/LPS, field application produced higher levels of hsp70. ELF-EMF suppressed caspase-9 activation by a small extent. These data confirm that ELF-EMF affects bacterial growth and the response of the immune system to bacterial challenges, suggesting that ELF-EMF could be exploited for beneficial uses.
本研究旨在确定极低频电磁场(ELF-EMF)对吞噬细胞针对感染因子的生理反应的影响。培养THP-1细胞(人单核细胞白血病细胞系),并对用金黄色葡萄球菌或干扰素γ/脂多糖(IFγ/LPS)诱导的细胞施加50 Hz、1 mT的电磁场4 - 6小时。测定一氧化氮(NO)、诱导型一氧化氮合酶(iNOS)水平、热休克蛋白70水平(hsp70)、环磷酸鸟苷(cGMP)水平、半胱天冬酶-9激活情况以及金黄色葡萄球菌的生长速率。暴露细菌的生长曲线低于对照组。施加电磁场增加了NO水平。对于金黄色葡萄球菌诱导的细胞,这种增加更为显著,且比未施加电磁场的细胞增加得更早。然而,观察到iNOS水平略有下降。施加电磁场后cGMP水平的升高与NO水平的升高密切相关。单独的ELF-EMF以时间依赖性方式导致hsp70水平升高。当细胞用金黄色葡萄球菌或IFγ/LPS诱导时,施加电磁场产生更高水平的hsp70。ELF-EMF在一定程度上抑制了半胱天冬酶-9的激活。这些数据证实ELF-EMF影响细菌生长以及免疫系统对细菌攻击的反应,表明ELF-EMF可被用于有益用途。
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