对邻苯二甲酸二(2-乙基己酯)致癌活性和分子机制的深入研究

IF 3.6 Q2 TOXICOLOGY
Gelsomina Pillo, Federico Aldrovandi, Ada Mescoli, Giangabriele Maffei, M. Mascolo, Monica Vaccari, A. Colacci
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引用次数: 0

摘要

邻苯二甲酸二(乙基己基)酯(DEHP)是一种无处不在的环境污染物,人类会通过多种途径接触到它。最近对这种物质的人类健康风险评估进行了更新,重点关注其生殖毒性,并将 DEHP 列入致癌、诱变或生殖毒性(CMR)化学品清单。此外,根据 DEHP 对啮齿动物的致癌性,DEHP 也被定义为可能或可能对人类致癌。然而,DEHP 的作用机理及其与人类的相关性仍不清楚。嚙齒動物的數據顯示,DEHP 會透過與多種分子訊號有關的非基因毒性機制誘發癌症,包括 PPARα 啟動、脂肪酸新陳代謝紊亂、誘導細胞增殖、減少細胞凋亡、產生活性氧和氧化應激。根据 DEHP 毒理学数据集,采用不同的方案和细胞模型进行了多项体外细胞转化试验,得出了不同的结果。本研究旨在使用标准细胞转化试验中的 A31-1-1 BALB/c-3T3 细胞系来评估 DEHP 的致癌潜力。此外,还进行了转录组分析,以探索分子反应并确定受影响的毒理学途径。虽然DEHP处理并未诱导BALB/c-3T3细胞发生转化,但转录组结果显示,与DEHP代谢相关的几种通路、与全身代谢相关的组织特异性功能以及具有多效应果的基础细胞信号传导都受到了显著的调节。在这些信号通路中,Notch、Wnt 和 TGF-β 等细胞调控信号通路的调节作用尤为突出。对这些在新陈代谢和神经生理学中具有双重功能的基因和通路进行更具体的调节,是众所周知的串扰的基础,而串扰可能对 DEHP 的作用机制至关重要。我们的研究结果证明,这些模型可以有效地减少毒性评估中动物试验的使用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An insight into carcinogenic activity and molecular mechanisms of Bis(2-ethylhexyl) phthalate
Di(ethylhexyl) phthalate (DEHP) is a ubiquitous environmental contaminant to which humans are exposed via multiple routes. Human health risk assessments for this substance have recently been updated, focusing on reproductive toxicity, including DEHP, in the list of chemicals classified as carcinogenic, mutagenic, or toxic to reproduction (CMR). Moreover, DEHP has also been defined as probably and possibly carcinogenic to humans based on its carcinogenicity in rodents. However, the mechanism of action of DEHP and its relevance in humans remain unclear. Rodent data suggests that DEHP induces cancer through non-genotoxic mechanisms related to multiple molecular signals, including PPARα activation, perturbation of fatty acid metabolism, induction of cell proliferation, decreased apoptosis, production of reactive oxygen species, and oxidative stress. According to the DEHP toxicological dataset, several in vitro cell transformation assays have been performed using different protocols and cellular models to produce different results. This study aimed to evaluate the carcinogenic potential of DEHP by using the A31-1-1 BALB/c-3T3 cell line in a standard cell transformation assay. Additionally, transcriptomic analysis was performed to explore the molecular responses and identify the affected toxicological pathways. Although DEHP treatment did not induce transformation in BALB/c-3T3 cells, the transcriptomic results revealed significant modulation of several pathways associated with DEHP metabolism, tissue-specific functions related to systemic metabolism, and basal cellular signaling with pleiotropic outcomes. Among these signaling pathways, modulation of cell-regulating signaling pathways, such as Notch, Wnt, and TGF-β, can be highlighted. More specific modulation of such genes and pathways with double functions in metabolism and neurophysiology underlies the well-known crosstalk that may be crucial for the mechanism of action of DEHP. Our findings offer evidence to support the notion that these models are effective in minimizing the use of animal testing for toxicity assessment.
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CiteScore
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