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摆荡跷跷板作为一种新型的时间依赖性激素作用模型机制,用于研究剂量依赖性刺激和抑制效应下的时间依赖性激素作用:以抗菌化学品对发光菌的毒性为例。

A swinging seesaw as a novel model mechanism for time-dependent hormesis under dose-dependent stimulatory and inhibitory effects: A case study on the toxicity of antibacterial chemicals to Aliivibrio fischeri.

机构信息

State Key Laboratory of Pollution Control and Resource Reuse, College of Environmental Science and Engineering, Tongji University, Shanghai, 200092, China.

Department of Public Health, Environmental Health Sciences, Morrill I, N344, University of Massachusetts, Amherst, MA 01003, USA.

出版信息

Chemosphere. 2018 Aug;205:15-23. doi: 10.1016/j.chemosphere.2018.04.043. Epub 2018 Apr 10.

Abstract

Hormesis occurs frequently in broadly ranging biological areas (e.g. plant biology, microbiology, biogerontology), toxicology, pharmacology and medicine. While numerous mechanisms (e.g. receptor and pathway mediated pathway responses) account for stimulatory and inhibitory features of hormetic dose responses, the vast majority emphasizes the inclusion of many doses but only one timepoint or use of a single optimized dose that is assessed over a broad range of timepoints. In this paper, a toxicity study was designed using a large number of properly spaced doses with responses determined over a large number of timepoints, which could help us reveal the underlying mechanism of hormesis. We present the results of a dose-time-response study on hormesis using five antibacterial chemicals on the bioluminescence of Aliivibrio fischeri, measuring expression of protein mRNA based on quorum sensing, simulating bioluminescent reaction and analyzing toxic actions of test chemicals. The findings show dose-time-dependent responses conforming to the hormetic dose-response model, while revealing unique response dynamics between agent induced stimulatory and inhibitory effects within bacterial growth phase dynamics. These dynamic dose-time features reveal a type of biological seesaw model that integrates stimulatory and inhibitory responses within unique growth phase, dose and time features, which has faultlessly explained the time-dependent hormetic phenomenon induced by five antibacterial chemicals (characterized by low-dose stimulation and high-dose inhibition). This study offers advances in understanding cellular dynamics, the biological integration of diverse and opposing responses and their role in evolutionary adaptive strategies to chemicals, which can provide new insight into the mechanistic investigation of hormesis.

摘要

Hormesis 广泛存在于生物学领域(如植物生物学、微生物学、生物老年学)、毒理学、药理学和医学中。虽然有许多机制(如受体和途径介导的途径反应)可以解释 hormetic 剂量反应的刺激和抑制特征,但绝大多数机制强调包含许多剂量,但只评估一个时间点或使用一个经过广泛时间点评估的单一优化剂量。在本文中,设计了一项毒性研究,使用大量适当间隔的剂量,并在大量时间点上确定反应,这有助于我们揭示 hormesis 的潜在机制。我们展示了使用五种抗菌化学品对 Aliivibrio fischeri 生物发光进行 hormesis 剂量-时间-反应研究的结果,根据群体感应测量蛋白质 mRNA 的表达,模拟生物发光反应,并分析测试化学品的毒性作用。研究结果表明,剂量-时间依赖性反应符合 hormesis 剂量-反应模型,同时揭示了细菌生长阶段动力学中agent 诱导的刺激和抑制作用之间独特的反应动力学。这些动态剂量-时间特征揭示了一种生物跷跷板模型,该模型将刺激和抑制反应整合到独特的生长阶段、剂量和时间特征中,完美地解释了五种抗菌化学品诱导的时间依赖性 hormesis 现象(表现为低剂量刺激和高剂量抑制)。这项研究为理解细胞动力学、不同和对立反应的生物整合及其在化学物质进化适应策略中的作用提供了进展,可以为 hormesis 的机制研究提供新的见解。

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