维甲酸致神经管缺损大鼠脊髓氧化应激和细胞凋亡的研究。

IF 1.7 4区 医学 Q3 DEVELOPMENTAL BIOLOGY International Journal of Developmental Neuroscience Pub Date : 2024-12-05 DOI:10.1002/jdn.10399
Peng Wu, Nan Shen, Shaoguang Feng, Weiguang Liu, Jun Wang, Chen Wang
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引用次数: 0

摘要

神经管缺陷(NTDs)是严重的先天性异常,严重影响中枢神经系统,由胚胎早期神经管未能关闭引起。在这项研究中,我们研究了暴露于全反式维甲酸(atRA)后的胎儿大鼠的NTDs和相关的病理生理机制。在实验组15只怀孕大鼠的168个胚胎中,78%显示NTDs伴有明显的脊柱畸形,主要发生在腰骶区,与人类病例相似。体重和冠臀长(CRL)测量显示,与对照组相比,NTD组的生长明显受损,而没有NTD的atra治疗组的生长没有显着差异。免疫组化(IHC)结果显示NTD组脊髓NeuN和PCNA表达降低。氧化应激标志物显示,NTD组超氧化物歧化酶(SOD)和谷胱甘肽过氧化物酶(GSH-px)活性显著降低,丙二醛(MDA)水平升高,表明氧化应激升高。凋亡相关蛋白分析显示,NTD组中Bax和caspase-3水平升高,Bcl-2和聚(adp -核糖)聚合酶(PARP)水平降低,提示向促凋亡途径的明显转变,可能导致NTD进展。我们的研究结果表明,氧化应激和细胞凋亡在NTDs的发展中起重要作用。未来的研究应旨在确定关键的调控基因或蛋白,这些基因或蛋白可能针对治疗干预,以减轻NTD发展过程中的氧化应激和细胞凋亡。
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Oxidative stress and apoptosis of the spinal cord in a rat model of retinoic acid-induced neural tube defects

Neural tube defects (NTDs) are severe congenital anomalies that significantly impact the central nervous system, arising from the neural tube's failure to close during early embryogenesis. In this study, we investigated NTDs and associated pathophysiological mechanisms in foetal rats following exposure to all-trans retinoic acid (atRA). Out of 168 embryos from 15 pregnant rats in the experimental group, 78% displayed NTDs with notable spinal deformities, primarily in the lumbar-sacral region, similar to human cases. Body weight and crown-rump length (CRL) measurements indicated significant growth impairment in the NTD group compared to controls, while the atRA-treated group without NTDs showed no notable differences in growth. Immunohistochemistry (IHC) results demonstrated decreased NeuN and PCNA expression in the NTD group's spinal cord. Oxidative stress markers showed markedly reduced superoxide dismutase (SOD) and glutathione peroxidase (GSH-px) activity, alongside increased malondialdehyde (MDA) levels in the NTD group, indicating heightened oxidative stress. Analysis of apoptosis-related proteins revealed elevated Bax and caspase-3 levels, reduced Bcl-2 and lower poly (ADP-ribose) polymerase (PARP) in the NTD group, suggesting a pronounced shift towards proapoptotic pathways, potentially contributing to NTD progression. Our findings indicate that oxidative stress and apoptosis play significant roles in the development of NTDs. Future investigations should aim to pinpoint critical regulatory genes or proteins that might be targeted for therapeutic interventions to alleviate oxidative stress and apoptosis in NTD development.

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来源期刊
CiteScore
3.30
自引率
5.60%
发文量
78
审稿时长
6-12 weeks
期刊介绍: International Journal of Developmental Neuroscience publishes original research articles and critical review papers on all fundamental and clinical aspects of nervous system development, renewal and regeneration, as well as on the effects of genetic and environmental perturbations of brain development and homeostasis leading to neurodevelopmental disorders and neurological conditions. Studies describing the involvement of stem cells in nervous system maintenance and disease (including brain tumours), stem cell-based approaches for the investigation of neurodegenerative diseases, roles of neuroinflammation in development and disease, and neuroevolution are also encouraged. Investigations using molecular, cellular, physiological, genetic and epigenetic approaches in model systems ranging from simple invertebrates to human iPSC-based 2D and 3D models are encouraged, as are studies using experimental models that provide behavioural or evolutionary insights. The journal also publishes Special Issues dealing with topics at the cutting edge of research edited by Guest Editors appointed by the Editor in Chief. A major aim of the journal is to facilitate the transfer of fundamental studies of nervous system development, maintenance, and disease to clinical applications. The journal thus intends to disseminate valuable information for both biologists and physicians. International Journal of Developmental Neuroscience is owned and supported by The International Society for Developmental Neuroscience (ISDN), an organization of scientists interested in advancing developmental neuroscience research in the broadest sense.
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