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梁丽荣, 刘冰, 曹书慧, 赵又谊, 曾甜, 翟美婷, 樊泽, 何丹毅, 马三兴, 史晓烔, 张瑶, 张惠. 2023: 翻译组学和蛋白质组组学整合分析揭示发育期七氟醚暴露通过抑制ADNP致远期社交行为和认知功能障碍. 动物学研究: 1-16. DOI: 10.24272/j.issn.2095-8137.2023.315
引用本文: 梁丽荣, 刘冰, 曹书慧, 赵又谊, 曾甜, 翟美婷, 樊泽, 何丹毅, 马三兴, 史晓烔, 张瑶, 张惠. 2023: 翻译组学和蛋白质组组学整合分析揭示发育期七氟醚暴露通过抑制ADNP致远期社交行为和认知功能障碍. 动物学研究: 1-16. DOI: 10.24272/j.issn.2095-8137.2023.315
Li-Rong Liang, Bing Liu, Shu-Hui Cao, You-Yi Zhao, Tian Zeng, Mei-Ting Zhai, Ze Fan, Dan-Yi He, San-Xin Ma, Xiao-Tong Shi, Yao Zhang, Hui Zhang. 2023. Integrated ribosome and proteome analyses reveal insights into sevoflurane-induced long-term social behavior and cognitive dysfunctions through ADNP inhibition in neonatal mice. Zoological Research, 45: 1-16. DOI: 10.24272/j.issn.2095-8137.2023.315
Citation: Li-Rong Liang, Bing Liu, Shu-Hui Cao, You-Yi Zhao, Tian Zeng, Mei-Ting Zhai, Ze Fan, Dan-Yi He, San-Xin Ma, Xiao-Tong Shi, Yao Zhang, Hui Zhang. 2023. Integrated ribosome and proteome analyses reveal insights into sevoflurane-induced long-term social behavior and cognitive dysfunctions through ADNP inhibition in neonatal mice. Zoological Research, 45: 1-16. DOI: 10.24272/j.issn.2095-8137.2023.315

翻译组学和蛋白质组组学整合分析揭示发育期七氟醚暴露通过抑制ADNP致远期社交行为和认知功能障碍

Integrated ribosome and proteome analyses reveal insights into sevoflurane-induced long-term social behavior and cognitive dysfunctions through ADNP inhibition in neonatal mice

  • 摘要: 越来越多的研究证实,发育期重复七氟醚暴露导致长期的社交异常和认知障碍。Davunetide是活性依赖性神经保护蛋白 (ADNP)的活性片段,具有社会和认知保护作用。Davunetide是否能减轻七氟醚暴露后的社会缺陷及其潜在的发育机制尚不清楚。该研究通过翻译组学和蛋白质组学联合分析研究了七氟醚致社交异常和认知缺陷的分子机制。结果表明发育期七氟醚暴露后,ADNP显著下调。成年后,前扣带回皮层神经元树突数目、总树突长度和树突棘密度均有所减少。膜片钳记录显示,前扣带回皮层mEPSCs频率和幅度均降低。重要的是,Davunetide显著缓解了七氟醚暴露所致的突触损伤、社交异常和认知障碍。机制上,shADNP通过Wnt/β- catenin信号通路引起钙活性失调,导致突触蛋白表达减少。且Davunetide挽救了七氟醚暴露对WNT信号的抑制。综上所述,我们揭示了ADNP作为预防和治疗全麻药物引起的神经发育毒性有效治疗靶点,为新生鼠七氟醚暴露引起的社交异常和认知损伤及其潜在的调节机制提供了新的见解。

     

    Abstract: A growing number of studies have demonstrated that repeated exposure to sevoflurane during development results in persistent social abnormalities and cognitive impairment. Davunetide, an active fragment of the activity-dependent neuroprotective protein (ADNP), has been implicated in social and cognitive protection. However, the potential of davunetide to attenuate social deficits following sevoflurane exposure and the underlying developmental mechanisms remain poorly understood. In this study, ribosome and proteome profiles were analyzed to investigate the molecular basis of sevoflurane-induced social deficits in neonatal mice. The neuropathological basis was also explored using Golgi staining, morphological analysis, western blotting, electrophysiological analysis, and behavioral analysis. Results indicated that ADNP was significantly down-regulated following developmental exposure to sevoflurane. In adulthood, anterior cingulate cortex (ACC) neurons exposed to sevoflurane exhibited a decrease in dendrite number, total dendrite length, and spine density. Furthermore, the expression levels of Homer, PSD95, synaptophysin, and vglut2 were significantly reduced in the sevoflurane group. Patch-clamp recordings indicated reductions in both the frequency and amplitude of miniature excitatory postsynaptic currents (mEPSCs). Notably, davunetide significantly ameliorated the synaptic defects, social behavior deficits, and cognitive impairments induced by sevoflurane. Mechanistic analysis revealed that loss of ADNP led to dysregulation of Ca2+ activity via the Wnt/β-catenin signaling, resulting in decreased expression of synaptic proteins. Suppression of Wnt signaling was restored in the davunetide-treated group. Thus, ADNP was identified as a promising therapeutic target for the prevention and treatment of neurodevelopmental toxicity caused by general anesthetics. This study provides important insights into the mechanisms underlying social and cognitive disturbances caused by sevoflurane exposure in neonatal mice and elucidates the regulatory pathways involved.

     

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