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在超高压输电线下蜂箱中的蜜蜂(意大利蜜蜂,Apis mellifera, L.)所观察到的生物效应机制:蜜蜂暴露于模拟强电场和电击所产生的影响。

Mechanism of biological effects observed in honey bees (Apis mellifera, L.) hived under extra-high-voltage transmission lines: implications derived from bee exposure to simulated intense electric fields and shocks.

作者信息

Bindokas V P, Gauger J R, Greenberg B

机构信息

Department of Biological Sciences, University of Illinois, Chicago.

出版信息

Bioelectromagnetics. 1988;9(3):285-301. doi: 10.1002/bem.2250090310.

Abstract

This work explores mechanisms for disturbance of honey bee colonies under a 765 kV, 60-Hz transmission line [electric (E) field = 7 kV/m] observed in previous studies. Proposed mechanisms fell into two categories: direct bee perception of enhanced in-hive E fields and perception of shock from induced currents. The adverse biological effects could be reproduced in simulations where only the worker bees were exposed to shock or to E field in elongated hive entranceways (= tunnels). We now report the results of full-scale experiments using the tunnel exposure scheme, which assesses the contribution of shock and intense E field to colony disturbance. Exposure of worker bees (1,400 h) to 60-Hz E fields including 100 kV/m under moisture-free conditions within a nonconductive tunnel causes no deleterious affect on colony behavior. Exposure of bees in conductive (e.g., wet) tunnels produces bee disturbance, increased mortality, abnormal propolization, and possible impairment of colony growth. We propose that this substrate dependence of bee disturbance is the result of perception of shock from coupled body currents and enhanced current densities postulated to exist in the legs and thorax of bees on conductors. Similarly, disturbance occurs when bees are exposed to step-potential-induced currents. At 275-350 nA single bees are disturbed; at 600 nA bees begin abnormal propolization behavior; and stinging occurs at 900 nA. We conclude that biological effects seen in bee colonies under a transmission line are primarily the result of electric shock from induced hive currents. This evaluation is based on the limited effects of E-field exposure in tunnels, the observed disturbance thresholds caused by shocks in tunnels, and the ability of hives exposed under a transmission line to source currents 100-1,000 times the shock thresholds.

摘要

本研究探讨了在先前研究中观察到的765 kV、60 Hz输电线下蜜蜂蜂群受干扰的机制。提出的机制分为两类:蜜蜂对蜂巢内增强电场的直接感知以及对感应电流电击的感知。在模拟实验中,仅让工蜂在狭长的蜂巢入口(即隧道)中暴露于电击或电场时,就能再现这些有害的生物学效应。我们现在报告使用隧道暴露方案进行的全面实验结果,该方案评估了电击和强电场对蜂群干扰的影响。在无导电隧道内的无湿条件下,让工蜂(1400小时)暴露于包括100 kV/m的60 Hz电场中,对蜂群行为没有有害影响。在导电(如潮湿)隧道中让蜜蜂暴露会导致蜜蜂受到干扰、死亡率增加、异常蜂胶化以及可能损害蜂群生长。我们认为,蜜蜂受干扰对底物的这种依赖性是由于感知到来自耦合身体电流的电击以及推测存在于导体上蜜蜂腿部和胸部的增强电流密度所致。同样,当蜜蜂暴露于跨步电压感应电流时也会出现干扰。单只蜜蜂在275 - 350 nA时受到干扰;在600 nA时蜜蜂开始出现异常蜂胶化行为;在900 nA时会发生蜇刺。我们得出结论,输电线下蜂群中观察到的生物学效应主要是感应蜂巢电流电击的结果。这一评估基于隧道中电场暴露的有限影响、隧道中电击引起的观察到的干扰阈值,以及输电线下暴露的蜂巢产生比电击阈值大100 - 1000倍电流的能力。

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