亚砷酸盐通过氧化应激和MAPK信号通路诱导海洋medaka肝脏凋亡

IF 4.1 2区 环境科学与生态学 Q1 MARINE & FRESHWATER BIOLOGY Aquatic Toxicology Pub Date : 2025-02-01 DOI:10.1016/j.aquatox.2024.107226
Jiangtian Lin , Ting Zhang , Li Zhang
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引用次数: 0

摘要

砷(As)对水生生物的危害已被广泛认识;然而,其对海鱼细胞凋亡的毒理学影响尚未得到充分探讨。本研究通过对海洋medaka肝脏细胞系在体内暴露于50或500 mg/kg AsIII(以NaAsO2形式)超过28天,以及在体外暴露于50 - 750 μg/L AsIII 48小时的影响进行研究,以阐明其毒性及其潜在的分子机制。在体内,As在肝组织中显著积累(为对照组的1.79倍),引起肝脏病变和细胞凋亡增加(分别为4.85±0.56%和9.29±1.82%)。基因表达分析显示bcl2l1下调,bax、caspase-3和caspase-9上调,提示线粒体途径介导的细胞凋亡。在体外,砷暴露诱导肝细胞形态改变、活性氧(ROS)产生和细胞凋亡。此外,mapk1和mapk3 (ERK通路)在体内和体外均下调,而mapk14a (P38通路)、mapk8b和mapk9 (JNK通路)仅在肝细胞中上调。此外,n-乙酰半胱氨酸(NAC)可减弱砷诱导的细胞凋亡,并调节MAPK信号通路基因mapk3和mapk8b的表达,表明砷诱导的氧化应激通过MAPK信号通路调控细胞凋亡。而苯基丁酸(PBA)对细胞凋亡无抑制作用。综上所述,这些结果表明,As通过氧化应激和MAPK信号通路诱导海洋medaka内源性细胞凋亡。
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Arsenite-induced liver apoptosis via oxidative stress and the MAPK signaling pathway in marine medaka
Arsenic (As) is widely recognized for its hazards to aquatic organisms; however, its toxicological impacts on apoptosis in marine fish remain inadequately explored. This study investigated the effects of in vivo dietary exposure to 50 or 500 mg/kg AsIII (as NaAsO2) over 28 days in marine medaka, alongside in vitro exposure to 50–750 μg/L AsIII for 48 h in a hepatic cell line derived from marine medaka, to elucidate the toxicity and underlying molecular mechanisms. In vivo, As significantly accumulated in liver tissue (1.79-fold compared to the control), causing hepatic lesions and increased apoptosis (4.85 ± 0.56 % and 9.29 ± 1.82 %, respectively). Gene expression analysis showed downregulation of bcl2l1 and upregulation of bax, caspase-3 and caspase-9, indicating mitochondrial pathway-mediated apoptosis. In vitro, As exposure induced hepatocyte morphological changes, reactive oxygen species (ROS) production, and apoptosis. Additionally, mapk1 and mapk3 (ERK pathway) were downregulated both in vivo and in vitro, while mapk14a (P38 pathway), mapk8b and mapk9 (JNK pathway) were upregulated exclusively in hepatocytes. Furthermore, n-acetyl cysteine (NAC) attenuated As-induced apoptosis and modulated the expression of MAPK signaling pathway genes, including mapk3 and mapk8b, suggesting that As-induced oxidative stress regulates apoptosis via the MAPK signaling pathway. In contrast, phenylbutyric acid (PBA) was ineffective in preventing apoptosis. Overall, these results demonstrate that As induces endogenous apoptosis through oxidative stress and the MAPK signaling pathway in marine medaka.
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来源期刊
Aquatic Toxicology
Aquatic Toxicology 环境科学-毒理学
CiteScore
7.10
自引率
4.40%
发文量
250
审稿时长
56 days
期刊介绍: Aquatic Toxicology publishes significant contributions that increase the understanding of the impact of harmful substances (including natural and synthetic chemicals) on aquatic organisms and ecosystems. Aquatic Toxicology considers both laboratory and field studies with a focus on marine/ freshwater environments. We strive to attract high quality original scientific papers, critical reviews and expert opinion papers in the following areas: Effects of harmful substances on molecular, cellular, sub-organismal, organismal, population, community, and ecosystem level; Toxic Mechanisms; Genetic disturbances, transgenerational effects, behavioral and adaptive responses; Impacts of harmful substances on structure, function of and services provided by aquatic ecosystems; Mixture toxicity assessment; Statistical approaches to predict exposure to and hazards of contaminants The journal also considers manuscripts in other areas, such as the development of innovative concepts, approaches, and methodologies, which promote the wider application of toxicological datasets to the protection of aquatic environments and inform ecological risk assessments and decision making by relevant authorities.
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