The role of HIF-1α/BNIP3/mitophagy in acrylonitrile-induced neuronal death in HT22 cells and mice: A potential neuroprotection target

IF 4.7 2区 医学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Chemico-Biological Interactions Pub Date : 2025-01-25 DOI:10.1016/j.cbi.2024.111327
Jing Hu , Bobo Yang , Zehua Tao , Jian Chen , Xinyu Zhang , Suhua Wang , Guangwei Xing , Ngwa Adeline Ngeng , Abdul Malik , Kwaku Appiah-Kubi , Marcelo Farina , Anatoly V. Skalny , Alexey A. Tinkov , Michael Aschner , Rongzhu Lu
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Abstract

Acrylonitrile (AN) is a widely utilized organic compound in the production of diverse industrial synthetic materials. While acute exposure to AN can cause neurotoxicity, the precise mechanism remains unclear. Hypoxia-inducible factor 1 alpha (HIF-1α) is a pivotal transcription factor that coordinates and orchestrates multiple physiological processes to adapt to hypoxic conditions, ensuring cellular survival and homeostasis. In this study, we used in vitro (cultured mouse hippocampal neuronal cell line, HT22) and in vivo (AN exposed mice) approaches to investigate the potential modulator effects of HIF-1α in AN-induced neurotoxicity. In vitro, AN exposure caused concentration-dependent toxicity in HT22 cells, which was paralleled by increased Bax levels while decreasing Bcl-2. Exposure to AN resulted in reduced protein levels of HIF-1α, Bcl-2 19-kDa interacting protein 3 (BNIP3), microtubule-associated protein 1 light chain 3 beta (LC3B) and Beclin1, while increased the protein levels of the translocase of outer mitochondrial membrane 20 (TOM20). Furthermore, mitochondrial morphology and function were compromised, suggesting that AN impaired HIF-1α/BNIP3-mediated mitochondrial autophagy and promoted apoptosis. Treatment with a HIF-1α activator, cobalt chloride (CoCl2), reversed these effects, while pretreatment with a HIF-1α inhibitor, 2-methoxyestradiol (2-MeOE2), augmented them. In BNIP3 overexpressing HT22 cells, enhanced cell viability and reduced apoptosis rates were observed. Furthermore, the HIF-1α/BNIP3 pathway was activated by the prolyl hydroxylase (PHD2) inhibitor, deferoxamine (DFO), which increased HT22 cell viability. Similarly, the activation of HIF-1α by administering 20 mg/kg of CoCl2 was found to alleviate neurotoxicity in mice. This treatment enhanced elevations of autophagy protein expression and co-localization of BNIP3 and LC3B. In summary, under normoxia, AN induced neurotoxicity by promoting PHD2-mediated HIF-1α degradation, disrupted the BNIP3-mediated mitophagy pathway, and enhanced apoptosis. Our findings underscore the effect of the HIF-1α/BNIP3-mediated mitochondrial autophagy in AN-induced neurotoxicity and suggest potential therapeutic strategies involving HIF-1α activation or BNIP3 overexpression for AN poisoning treatment.

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HIF-1α/Bnip3/线粒体自噬在丙烯腈诱导HT22细胞和小鼠神经元死亡中的作用:一个潜在的神经保护靶点。
丙烯腈是一种广泛应用于各种工业合成材料生产的有机化合物。虽然急性暴露于AN可引起神经毒性,但确切的机制尚不清楚。缺氧诱导因子1α (HIF-1α)是一种关键的转录因子,它协调和协调多种生理过程以适应缺氧条件,确保细胞存活和体内平衡。本研究采用体外(培养的小鼠海马神经元细胞系HT22)和体内(暴露于AN的小鼠)两种方法研究HIF-1α在AN诱导的神经毒性中的潜在调节作用。在体外,AN暴露在HT22细胞中引起浓度依赖性毒性,与Bax水平升高而Bcl-2水平降低平行。暴露于AN导致HIF-1α、Bcl-2 19-kDa相互作用蛋白3 (BNIP3)、微管相关蛋白1轻链3 β (LC3)和Beclin1蛋白水平降低,而线粒体外膜转位酶20 (TOM20)蛋白水平升高。此外,线粒体形态和功能受到损害,表明AN损害了HIF-1α/ bnip3介导的线粒体自噬并促进了细胞凋亡。用HIF-1α活化剂氯化钴(CoCl2)治疗可以逆转这些作用,而用HIF-1α抑制剂2-甲氧基雌二醇(2-MeOE2)预处理可以增强这些作用。在过表达BNIP3的HT22细胞中,观察到细胞活力增强,凋亡率降低。此外,HIF-1α/BNIP3通路被脯氨酰羟化酶(PHD2)抑制剂去铁胺(DFO)激活,从而提高HT22细胞的活力。同样,通过给予20 mg/kg的CoCl2激活HIF-1α可以减轻小鼠的神经毒性。这种处理增强了自噬蛋白的表达和BNIP3和LC3的共定位。综上所述,在正常情况下,AN通过促进phd2介导的HIF-1α降解,破坏bnip3介导的线粒体自噬途径,并增强细胞凋亡来诱导神经毒性。我们的研究结果强调了HIF-1α/BNIP3介导的线粒体自噬在AN诱导的神经毒性中的作用,并提出了涉及HIF-1α激活或BNIP3过表达的潜在治疗策略。
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来源期刊
CiteScore
7.70
自引率
3.90%
发文量
410
审稿时长
36 days
期刊介绍: Chemico-Biological Interactions publishes research reports and review articles that examine the molecular, cellular, and/or biochemical basis of toxicologically relevant outcomes. Special emphasis is placed on toxicological mechanisms associated with interactions between chemicals and biological systems. Outcomes may include all traditional endpoints caused by synthetic or naturally occurring chemicals, both in vivo and in vitro. Endpoints of interest include, but are not limited to carcinogenesis, mutagenesis, respiratory toxicology, neurotoxicology, reproductive and developmental toxicology, and immunotoxicology.
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Editorial Board The effect of a varying pyridine ligand on the anticancer activity of Diiron(I) bis-cyclopentadienyl complexes The role of HIF-1α/BNIP3/mitophagy in acrylonitrile-induced neuronal death in HT22 cells and mice: A potential neuroprotection target Critical considerations for co-administering rivaroxaban and vonoprazan: Unveiling potential pharmacokinetic interactions Deferoxamine-induced neurotoxicity: Role of chaperone-mediated autophagy dysfunction in neuronal apoptosis in the hippocampus
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