Inconsistent suppression of nocturnal pineal melatonin synthesis and serum melatonin levels in rats exposed to pulsed DC magnetic fields

被引:0
作者
Reiter, RJ
Tan, DX
Poeggeler, B
Kavet, R
机构
[1] Univ Texas, Hlth Sci Ctr, Dept Cellular & Struct Biol, San Antonio, TX 78284 USA
[2] Elect Power Res Inst, Environm Div, Palo Alto, CA USA
关键词
pineal gland; melatonin; DC magnetic field exposure; rat; pulsed magnetic fields;
D O I
10.1002/(SICI)1521-186X(1998)19:5<318::AID-BEM6>3.0.CO;2-4
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The purpose of these experiments was to determine whether the exposure of rats at night to pulsed DC magnetic fields (MF) would influence the nocturnal production and secretion of melatonin, as indicated by pineal N-acetyltransferase (NAT) activity (the rate limiting enzyme in melatonin production) and pineal and serum melatonin levels. By using a computer-driven exposure system, 15 experiments were conducted. MF exposure onset was always during the night, with the duration of exposure varying from 15 to 120 min. A variety of field strengths, ranging from 50 to 500 mu T (0.5 to 5.0 G) were used with the bulk of the studies being conducted using a 100 mu T (1.0 G) field. During the interval of DC MF exposure, the field was turned on and off at 1-s intervals with a rise/fall time constant of 5 ms. Because the studies were performed during the night, all procedures were carried out under weak red light (intensity of <5 mu W/cm(2)). At the conclusion of each study, a blood sample and the pineal gland were collected for analysis of serum melatonin titers and pineal NAT and melatonin levels. The outcome of individual studies varied. Of the 23 cases in which pineal NAT activity, pineal melatonin, and serum melatonin levels were measured, the following results were obtained; in 5 cases (21.7%) pineal NAT activity was depressed, in 2 cases (8.7%) studies pineal melatonin levels were lowered, and in 10 cases (43.5%) serum melatonin concentrations Were reduced. Never was there a measured rise in any of the end points that were considered in this study. The magnitudes of the reductions were not correlated with field strength (i.e., no dose-response relationships were apparent), and likewise the reductions could not be correlated with the season of the year (experiments conducted at 12-month intervals under identical exposure conditions yielded different results). Duration of exposure also seemed not to be a factor in the degree of melatonin suppression. The inconsistency of the results does not permit the conclusion that pineal melatonin production or release are routinely influenced by pulsed DC MF exposure. In the current series of studies, a suppression of serum melatonin sometimes occurred in the absence of any apparent change in the synthesis of this indoleamine within the pineal gland (no alteration in either pineal NAT activity or pineal melatonin levels). Because melatonin is a direct free radical scavenger, the drop in serum melatonin could theoretically be explained by an increased uptake of melatonin by tissues that were experiencing augmented levels of free radicals as a consequence of MF exposure. This hypothetical possibly requires additional experimental documentation. (C) 1998 Wiley-Liss, Inc.
引用
收藏
页码:318 / 329
页数:12
相关论文
共 43 条
[1]  
ADAIR RK, 1996, 18 ANN M BEMS VICT C, P62
[2]   SEASONALITY OF PINEAL MELATONIN PRODUCTION IN THE RAT - POSSIBLE SYNCHRONIZATION BY THE GEOMAGNETIC-FIELD [J].
BARTSCH, H ;
BARTSCH, C ;
MECKE, D ;
LIPPERT, TH .
CHRONOBIOLOGY INTERNATIONAL, 1994, 11 (01) :21-26
[3]   THE INFLUENCE OF DIFFERENT LIGHT SPECTRA ON THE SUPPRESSION OF PINEAL MELATONIN CONTENT IN THE SYRIAN-HAMSTER [J].
BRAINARD, GC ;
RICHARDSON, BA ;
KING, TS ;
REITER, RJ .
BRAIN RESEARCH, 1984, 294 (02) :333-339
[4]   THE SUPPRESSION OF PINEAL MELATONIN CONTENT AND N-ACETYLTRANSFERASE ACTIVITY BY DIFFERENT LIGHT IRRADIANCES IN THE SYRIAN-HAMSTER - A DOSE-RESPONSE RELATIONSHIP [J].
BRAINARD, GC ;
RICHARDSON, BA ;
KING, TS ;
MATTHEWS, SA ;
REITER, RJ .
ENDOCRINOLOGY, 1983, 113 (01) :293-296
[5]  
Brainard GC, 1993, LIGHT BIOLOGICAL RHY, P29
[6]   Free radical mechanism for the effects of environmental electromagnetic fields on biological systems [J].
Brocklehurst, B ;
McLauchlan, KA .
INTERNATIONAL JOURNAL OF RADIATION BIOLOGY, 1996, 69 (01) :3-24
[7]  
Graham C, 1996, BIOELECTROMAGNETICS, V17, P263, DOI 10.1002/(SICI)1521-186X(1996)17:4<263::AID-BEM2>3.0.CO
[8]  
2-1
[9]   MAGNETIC-FIELD EFFECTS IN BIOLOGY - A SURVEY OF POSSIBLE MECHANISMS WITH EMPHASIS ON RADICAL-PAIR RECOMBINATION [J].
GRISSOM, CB .
CHEMICAL REVIEWS, 1995, 95 (01) :3-24
[10]   ON THE PRIMARY FUNCTIONS OF MELATONIN IN EVOLUTION - MEDIATION OF PHOTOPERIODIC SIGNALS IN A UNICELL, PHOTOOXIDATION, AND SCAVENGING OF FREE-RADICALS [J].
HARDELAND, R ;
BALZER, I ;
POEGGELER, B ;
FUHRBERG, B ;
URIA, H ;
BEHRMANN, G ;
WOLF, R ;
MEYER, TJ ;
REITER, RJ .
JOURNAL OF PINEAL RESEARCH, 1995, 18 (02) :104-111