Endoplasmic Reticulum Stress Promotes Neuronal Damage in Neonatal Hypoxic-Ischemic Brain Damage by Inducing Ferroptosis.

IF 2.4 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Molecular Biotechnology Pub Date : 2025-02-01 Epub Date: 2024-02-08 DOI:10.1007/s12033-024-01095-9
Yongjia Ji, Huili Liu, Fang Niu, Bo Kang, Xiu Luo, Hua Yang, Zhen Tian, Juan Yang
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Abstract

Hypoxic-ischemic brain damage (HIBD) poses a significant risk of neurological damage in newborns. This study investigates the impact of endoplasmic reticulum stress (ERS) on neuronal damage in neonatal HIBD and its underlying mechanisms. HIBD neonatal rat model was constructed and pre-treated with 4-phenylbutiric acid (4-PBA). Nissl and TUNEL staining were utilised to assess neuronal damage and apoptosis in rat brains. HIBD cell model was established by inducing oxygen-glucose deprivation (OGD) in rat H19-7 neurons, which were then pre-treated with Thapsigargin (TG), Ferrostatin-1 (Fer-1), or both. Cell viability and apoptosis of H19-7 neurons were analysed using cell counting kit-8 assay and TUNEL staining. GRP78-PERK-CHOP pathway activity and glutathione peroxidase-4 (GPX4) expression in rat brains and H19-7 neurons were assessed using Western blot. Ferroptosis-related indicators, including glutathione (GSH), superoxide dismutase (SOD), malondialdehyde (MDA) and iron content, were measured using commercial kits in both rat brains and H19-7 neurons. GRP78-PERK-CHOP pathway was overactivated in HIBD neonatal rats' brains, which was mitigated by 4-PBA treatment. 4-PBA treatment demonstrated a reduction in neuronal damage and apoptosis in HIBD-affected neonatal rat brains. Furthermore, it attenuated ferroptosis in rats by increasing GPX4, GSH and SOD while decreasing MDA and iron content. In the OGD-induced H19-7 neurons, Fer-1 treatment counteracted the suppressive effects of TG on viability, the exacerbation of apoptosis, the promotion of ferroptosis and the activation of the GRP78-PERK-CHOP pathway. Overall, ERS facilitates neuronal damage in neonatal HIBD by inducing ferroptosis. Consequently, the suppression of ERS may represent a promising therapeutic strategy for treating neonatal HIBD.

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内质网应激通过诱导铁氧化促进新生儿缺氧缺血性脑损伤中的神经元损伤
缺氧缺血性脑损伤(HIBD)是新生儿神经损伤的一个重要风险因素。本研究探讨了内质网应激(ERS)对新生儿 HIBD 神经元损伤的影响及其内在机制。构建了新生大鼠 HIBD 模型,并用 4-苯基丁酸(4-PBA)进行预处理。利用 Nissl 和 TUNEL 染色评估大鼠大脑神经元损伤和凋亡情况。通过诱导大鼠 H19-7 神经元缺氧-缺糖(OGD)建立了 HIBD 细胞模型,然后用 Thapsigargin (TG)、Ferrostatin-1 (Fer-1) 或两者进行预处理。使用细胞计数试剂盒-8测定法和TUNEL染色法分析H19-7神经元的细胞活力和凋亡情况。大鼠大脑和 H19-7 神经元中的 GRP78-PERK-CHOP 通路活性和谷胱甘肽过氧化物酶-4(GPX4)表达采用 Western 印迹法进行评估。使用商业试剂盒测定了大鼠大脑和 H19-7 神经元中的铁变态反应相关指标,包括谷胱甘肽(GSH)、超氧化物歧化酶(SOD)、丙二醛(MDA)和铁含量。HIBD新生大鼠大脑中的GRP78-PERK-CHOP通路被过度激活,而4-PBA治疗可减轻这一现象。4-PBA治疗可减少受HIBD影响的新生大鼠大脑神经元的损伤和凋亡。此外,4-PBA 还能增加 GPX4、GSH 和 SOD,同时降低 MDA 和铁含量,从而减轻大鼠的铁变态反应。在 OGD 诱导的 H19-7 神经元中,Fer-1 处理可抵消 TG 对活力的抑制作用、凋亡的加剧、铁败坏的促进以及 GRP78-PERK-CHOP 通路的激活。总之,ERS 通过诱导铁凋亡促进了新生儿 HIBD 中神经元的损伤。因此,抑制ERS可能是治疗新生儿HIBD的一种有前途的治疗策略。
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来源期刊
Molecular Biotechnology
Molecular Biotechnology 医学-生化与分子生物学
CiteScore
4.10
自引率
3.80%
发文量
165
审稿时长
6 months
期刊介绍: Molecular Biotechnology publishes original research papers on the application of molecular biology to both basic and applied research in the field of biotechnology. Particular areas of interest include the following: stability and expression of cloned gene products, cell transformation, gene cloning systems and the production of recombinant proteins, protein purification and analysis, transgenic species, developmental biology, mutation analysis, the applications of DNA fingerprinting, RNA interference, and PCR technology, microarray technology, proteomics, mass spectrometry, bioinformatics, plant molecular biology, microbial genetics, gene probes and the diagnosis of disease, pharmaceutical and health care products, therapeutic agents, vaccines, gene targeting, gene therapy, stem cell technology and tissue engineering, antisense technology, protein engineering and enzyme technology, monoclonal antibodies, glycobiology and glycomics, and agricultural biotechnology.
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