环境内分泌干扰化学物质4-叔丁基苯酚通过miRNA-363/CACNA1D轴诱导细胞上皮瘤乳头状瘤细胞的钙超载和随后的自噬损伤。

IF 3.9 3区 环境科学与生态学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Jiawen Cui , Zhenda Liang , Yuhao Liu , Zhiyu Hao , You Tang , Li Zhou , Xiaohua Teng
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引用次数: 0

摘要

环境内分泌干扰化学物质 4-叔丁基苯酚(4-tBP)是一种广泛应用于各行各业的表面活性剂,对水生生物构成潜在风险。我们之前的测序结果表明,4-tBP 诱导的鲤鱼肝损伤可能与 Ca2+ 信号转导和自噬有关。然而,这些途径在 4-tBP 诱导的细胞毒性机制中的复杂参与仍有待探索。为了填补这些知识空白,本研究重点研究了鱼类生物学中的一种重要细胞类型--上皮乳头状瘤细胞(EPC)。初步观察表明,4-tBP 会诱导 Ca2+ 水平的剂量依赖性扰动。利用 siRNA 和 L 型 Ca2+ 通道激动剂(BAYK8644)进行的进一步研究发现,L 型钙通道基因 CACNA1D 是 4-tBP 诱导 Ca2+ 过载的关键调节因子。利用 miRanda 平台进行的预测分析表明,miR-363 与 CACNA1D 之间存在潜在的相互作用,这一点随后通过双荧光素酶报告基因实验得到了验证。随后,我们在 EPC 细胞中建立了 miR-363 模拟/抑制剂模型以及 miR-363 和 CACNA1D 共同抑制模型。通过TEM观察、免疫荧光检测、Ca2+染色和qRT-PCR分析,我们评估了miR-363/CACNA1D轴在调节4-tBP对Ca2+信号转导和自噬影响中的作用。结果表明,miR-363 抑制剂会加剧 4-tBP 诱导的 CALM2、CAMKII、Calpain2 和 p62 表达的增加,并导致 ATG5、ATG7 和 LC3b 表达的减少。相比之下,miR-363 模拟物明显缓解了这些变化。值得注意的是,siRNA CACNA1D 能有效调节 miR-363 抑制剂的作用。我们的研究揭示了 4-tBP 通过 miR-363/CACNA1D 轴诱导 Ca2+ 超载和随后的自噬损伤。这些发现深刻揭示了4-tBP诱导细胞毒性的分子机制,并发现了一个潜在的治疗靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Environmental endocrine disrupting chemical 4-tert-butylphenol induced calcium overload and subsequent autophagy impairment via miRNA-363/CACNA1D Axis in epithelioma papulosum cyprini cells

Environmental endocrine disrupting chemical 4-tert-butylphenol induced calcium overload and subsequent autophagy impairment via miRNA-363/CACNA1D Axis in epithelioma papulosum cyprini cells

Environmental endocrine disrupting chemical 4-tert-butylphenol (4-tBP), a widely-utilized surfactant in various industries, poses potential risks to aquatic organisms. Our previous sequencing results suggested that 4-tBP-induced common carp liver injury might be associated with Ca2+ signaling and autophagy. However, the intricate involvement of these pathways in 4-tBP-induced cytotoxic mechanisms remained unexplored. To bridge these knowledge gaps, this study focused on epithelioma papulosum cyprini (EPC) cells, a significant cell type in fish biology. Initial observations showed that 4-tBP induced a dose-dependent perturbation in Ca2+ levels. Further investigations, with siRNA and L-type Ca2+ channel agonist (BAYK8644), identified L-type calcium channel gene CACNA1D as a critical regulator of 4-tBP-induced Ca2+ overload. Predictive analysis using miRanda platform suggested a potential interaction between miR-363 and CACNA1D, which was subsequently verified through dual-luciferase reporter gene assays. We then established miR-363 mimic/inhibitor models, along with miR-363 and CACNA1D co-suppression models in EPC cells. Through TEM observation, immunofluorescence assay, Ca2+ staining, and qRT-PCR analysis, we evaluated the role of miR-363/CACNA1D axis in modulating the effects of 4-tBP on Ca2+ signaling and autophagy. Results showed that miR-363 inhibitor exacerbated 4-tBP-induced increase in CALM2, CAMKII, Calpain2, and p62 expression and also led to decrease in ATG5, ATG7, and LC3b expression. In contrast, miR-363 mimic notably alleviated these changes. Notably, siRNA CACNA1D effectively modulating miR-363 inhibitor's effect. Our study revealed that 4-tBP induced Ca2+ overload and subsequent autophagy impairment via miR-363/CACNA1D axis. These findings illuminated a profound understanding of molecular mechanisms underlying 4-tBP-induced cytotoxicity and spotlighted a potential therapeutic target.

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来源期刊
CiteScore
7.50
自引率
5.10%
发文量
206
审稿时长
30 days
期刊介绍: Part C: Toxicology and Pharmacology. This journal is concerned with chemical and drug action at different levels of organization, biotransformation of xenobiotics, mechanisms of toxicity, including reactive oxygen species and carcinogenesis, endocrine disruptors, natural products chemistry, and signal transduction with a molecular approach to these fields.
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