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Forced Desynchronization of Activity Rhythms in a Model of Chronic Jet Lag in Mice

泽吉伯 夹带(生物音乐学) 昼夜节律 节奏 句号(音乐) 光周期性 时间生物学 喷射(流体) 物理 内科学 内分泌学 生物 生物钟 医学 机械 声学
作者
Leandro P. Casiraghi,Gisele A. Oda,Juan José Chiesa,W. Otto Friesen,Diego A. Golombék
出处
期刊:Journal of Biological Rhythms [SAGE Publishing]
卷期号:27 (1): 59-69 被引量:65
标识
DOI:10.1177/0748730411429447
摘要

We studied locomotor activity rhythms of C57/Bl6 mice under a chronic jet lag (CJL) protocol ( ChrA 6/2 ), which consisted of 6-hour phase advances of the light-dark schedule (LD) every 2 days. Through periodogram analysis, we found 2 components of the activity rhythm: a short-period component (21.01 ± 0.04 h) that was entrained by the LD schedule and a long-period component (24.68 ± 0.26 h). We developed a mathematical model comprising 2 coupled circadian oscillators that was tested experimentally with different CJL schedules. Our simulations suggested that under CJL, the system behaves as if it were under a zeitgeber with a period determined by (24 – [phase shift size/days between shifts]). Desynchronization within the system arises according to whether this effective zeitgeber is inside or outside the range of entrainment of the oscillators. In this sense, ChrA 6/2 is interpreted as a (24 − 6/2 = 21 h) zeitgeber, and simulations predicted the behavior of mice under other CJL schedules with an effective 21-hour zeitgeber. Animals studied under an asymmetric T = 21 h zeitgeber (carried out by a 3-hour shortening of every dark phase) showed 2 activity components as observed under ChrA 6/2 : an entrained short-period (21.01 ± 0.03 h) and a long-period component (23.93 ± 0.31 h). Internal desynchronization was lost when mice were subjected to 9-hour advances every 3 days, a possibility also contemplated by the simulations. Simulations also predicted that desynchronization should be less prevalent under delaying than under advancing CJL. Indeed, most mice subjected to 6-hour delay shifts every 2 days (an effective 27-hour zeitgeber) displayed a single entrained activity component (26.92 ± 0.11 h). Our results demonstrate that the disruption provoked by CJL schedules is not dependent on the phase-shift magnitude or the frequency of the shifts separately but on the combination of both, through its ratio and additionally on their absolute values. In this study, we present a novel model of forced desynchronization in mice under a specific CJL schedule; in addition, our model provides theoretical tools for the evaluation of circadian disruption under CJL conditions that are currently used in circadian research.
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