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Extremely high‐frequency electromagnetic radiation enhances neutrophil response to particulate agonists

机译:极高频电磁辐射增强中性粒细胞对微粒激动剂的反应

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The growing use of extremely high‐frequency electromagnetic radiation (EHF EMR) in information and communication technology and in biomedical applications has raised concerns regarding the potential biological impact of millimeter waves (MMWs). Here, we elucidated the effects of MMW radiation on neutrophil activation induced by opsonized zymosan or E. coli in whole blood ex vivo. After agonist addition to blood, two samples were prepared. A control sample was incubated at ambient conditions without any treatment, and a test sample was exposed to EHF EMR (32.9–39.6?GHz, 100?W/m 2 ). We used methods that allowed us to assess the functional status of neutrophils immediately after exposure: oxidant production levels were measured by luminol‐dependent chemiluminescence, and morphofunctional changes to neutrophils were observed in blood smears. Results revealed that the response of neutrophils to both agonists was intensified if blood was exposed to MMW radiation for 15?min. Neutrophils were intact in both the control and irradiated samples if no agonist was added to blood before incubation. Similarly, exposing suspensions of isolated neutrophils in plasma to MMW radiation enhanced cell response to both zymosan and E. coli . Heating blood samples was shown to be the primary mechanism underlying enhanced EHF EMR‐induced oxidant production by neutrophils in response to particulate agonists. Bioelectromagnetics. 39:144–155, 2018. ? 2017 Wiley Periodicals, Inc.
机译:极高频电磁辐射 (EHF EMR) 在信息和通信技术以及生物医学应用中的使用越来越多,这引起了人们对毫米波 (MMW) 潜在生物影响的担忧。在这里,我们阐明了MMW辐射对调理酶聚糖或大肠杆菌在体外全血中诱导的中性粒细胞活化的影响。在血液中加入激动剂后,制备了两个样品。对照样品在环境条件下孵育,无需任何处理,测试样品暴露于 EHF EMR (32.9–39.6?GHz,100?W/m 2 )。我们使用的方法使我们能够在暴露后立即评估中性粒细胞的功能状态:通过鲁米诺依赖性化学发光测量氧化剂的产生水平,并在血涂片中观察到中性粒细胞的形态功能变化。结果显示,当血液暴露于MMW辐射15?min时,中性粒细胞对两种激动剂的反应都会增强。如果在孵育前未向血液中添加激动剂,则对照样品和辐照样品中的中性粒细胞均完好无损。同样,将血浆中分离的中性粒细胞悬浮液暴露于MMW辐射可增强细胞对酶聚糖和大肠杆菌的反应。加热血液样本被证明是增强 EHF EMR 诱导的中性粒细胞响应颗粒激动剂产生氧化剂的主要机制。生物电磁学。39:144–155, 2018.?2017 年 Wiley Periodicals, Inc.

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