Compound exposure of 2.8 GHz and 9.3 GHz microwave causes learning and memory impairment in rats.

IF 3.6 3区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES Heliyon Pub Date : 2025-01-03 eCollection Date: 2025-01-15 DOI:10.1016/j.heliyon.2025.e41626
Liu Sun, Xiaoya Wang, Ke Ren, Chuanfu Yao, Haoyu Wang, Xinping Xu, Hui Wang, Ji Dong, Jing Zhang, Binwei Yao, Xiaohui Wei, Ruiyun Peng, Li Zhao
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Abstract

The anxieties and concerns about health hazards caused by microwave has been growing recently. Previous studies have reported microwave induced structural and functional injuries to brain. However, the biological effects caused by compound microwave were largely unexplored. In this study, we investigated the biological effects on rat's hippocampus after sequentially exposure to 2.8 GHz and 9.3 GHz at average power density of 10 mW/cm2. Morris water maze (MWM) navigation tests showed that microwave exposure significantly extended the average escape latency (AEL) at 1d and 3d after exposure, suggesting reduced learning and memory ability. Importantly, compound microwave produced strongest responses at 3 d after exposure. Moreover, microwave also could induce abnormal electroencephalogram (EEG), such as increasing the power of θ wave and δ wave, suggesting brain damage or dysfunction. Histopathological analysis suggested that microwave resulted in obvious structural injuries in hippocampus at 7 d after exposure, and most serious injuries were observed in compound microwave exposed rats. Moreover, disorder of mitochondria and reduced Nissl bodies in hippocampus might contribute to the decrease of cognitive function. However, both the cognitive function and hippocampal structure restored to normal at 28 d after exposure, which might be attributed to self-recovery mechanisms. Gene ontology (GO) and Protein-protein interaction (PPI) analyses of differential expressed genes (DEGs) in peripheral blood suggested that Htt and Bdnf might be potential indicators to predict microwave. In conclusion, compound microwave of 2.8 GHz and 9.3 GHz could elicit reversible structural injuries to hippocampus, which could decrease the cognitive function of rats.

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2.8 千兆赫和 9.3 千兆赫微波的复合照射会导致大鼠学习和记忆障碍。
最近,人们对微波对健康危害的焦虑和担忧越来越多。先前的研究报道了微波引起的脑结构和功能损伤。然而,复合微波引起的生物效应在很大程度上尚未得到探索。在本研究中,我们研究了平均功率密度为10 mW/cm2的2.8 GHz和9.3 GHz连续暴露对大鼠海马的生物学效应。Morris水迷宫(MWM)导航实验显示,微波暴露显著延长了暴露后1d和3d的平均逃避潜伏期(AEL),提示学习记忆能力下降。重要的是,复合微波在暴露后3天产生最强的反应。此外,微波还能引起脑电图异常,如θ波和δ波的功率增加,提示脑损伤或功能障碍。组织病理学分析表明,微波暴露后7 d海马组织结构损伤明显,以复合微波暴露大鼠损伤最为严重。此外,海马线粒体的紊乱和尼氏体的减少也可能导致认知功能的下降。然而,暴露后28 d,认知功能和海马结构均恢复正常,这可能归因于自我恢复机制。外周血差异表达基因(DEGs)的基因本体(GO)和蛋白-蛋白相互作用(PPI)分析提示Htt和Bdnf可能是预测微波的潜在指标。综上所述,2.8 GHz和9.3 GHz复合微波可引起大鼠海马可逆性结构损伤,使认知功能下降。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Heliyon
Heliyon MULTIDISCIPLINARY SCIENCES-
CiteScore
4.50
自引率
2.50%
发文量
2793
期刊介绍: Heliyon is an all-science, open access journal that is part of the Cell Press family. Any paper reporting scientifically accurate and valuable research, which adheres to accepted ethical and scientific publishing standards, will be considered for publication. Our growing team of dedicated section editors, along with our in-house team, handle your paper and manage the publication process end-to-end, giving your research the editorial support it deserves.
期刊最新文献
Corrigendum to "Short-term outcomes of robot-assisted minimally invasive surgery for brainstem hemorrhage: A case-control study" [Heliyon Volume 10, Issue 4, February 2024, Article e25912]. Retraction notice to "Enhancing data security and privacy in energy applications: Integrating IoT and blockchain technologies" [Heliyon 10 (2024) e38917]. Retraction notice to "CREB1 promotes cholangiocarcinoma metastasis through transcriptional regulation of the LAYN-mediated TLN1/β1 integrin axis" [Heliyon 10 (2024) e36595]. Retraction notice to "Experimental investigations of dual functional substrate integrated waveguide antenna with enhanced directivity for 5G mobile communications" [Heliyon 10 (2024) e36929]. Retraction notice to "Nutritional and bioactive properties and antioxidant potential of Amaranthus tricolor, A. lividus, A viridis, and A. spinosus leafy vegetables" [Heliyon 10 (2024) e30453].
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