Attenuated iron stress and oxidative stress may participate in anti-seizure and neuroprotective roles of xenon in pentylenetetrazole-induced epileptogenesis

被引:2
作者
Zhang, Mengdi [1 ]
Cheng, Yao [1 ]
Zhai, Yujie [1 ]
Yuan, Yi [1 ]
Hu, Haoran [1 ]
Meng, Xianfeng [1 ]
Fan, Xuemeng [1 ]
Sun, Hongliu [1 ]
Li, Shucui [1 ]
机构
[1] Binzhou Med Univ, Sch Pharmaceut Sci, Yantai, Peoples R China
基金
中国国家自然科学基金;
关键词
epileptogenesis; neuronal injury; oxidative stress; iron stress; xenon; EPILEPSY; ACCUMULATION; DEFICITS; MODEL; STIMULATION; GUIDELINES; GLUTAMATE; ISCHEMIA; INJURY; RATS;
D O I
10.3389/fncel.2022.1007458
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
The previous studies have demonstrated the excellent neuroprotective effects of xenon. In this study, we verified the anti-seizure and neuroprotective roles of xenon in epileptogenesis and evaluated the involvement of oxidative stress and iron accumulation in the protective roles of xenon. Epileptogenesis was induced by pentylenetetrazole (PTZ) treatment in Sprague-Dawley rats. During epileptogenesis, we found increased levels of iron and oxidative stress accompanied by elevated levels of divalent metal transporter protein 1 and iron regulatory protein 1, which are closely associated with iron accumulation. Meanwhile, the levels of autophagy and mitophagy increased, alongside significant neuronal damage and cognitive deficits. Xenon treatment reversed these effects: oxidative stress and iron stress were reduced, neuronal injury and seizure severity were attenuated, and learning and memory deficits were improved. Thus, our results confirmed the neuroprotective and anti-seizure effects of xenon treatment in PTZ-induced epileptogenesis. The reduction in oxidative and iron stress may be the main mechanisms underlying xenon treatment. Thus, this study provides a potential intervention strategy for epileptogenesis.
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页数:15
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共 74 条
[1]   The PTZ kindling mouse model of epilepsy exhibits exploratory drive deficits and aberrant activity amongst VTA dopamine neurons in both familiar and novel space [J].
Ahmadi, Mahboubeh ;
Dufour, Jean-Philippe ;
Seifritz, Erich ;
Mimajafi-Zadeh, Javad ;
Saab, Bechara J. .
BEHAVIOURAL BRAIN RESEARCH, 2017, 330 :1-7
[2]   Evidence-based and consensus clinical practice guidelines for the iron treatment of restless legs syndrome/Willis-Ekbom disease in adults and children: an IRLSSG task force report [J].
Allen, Richard P. ;
Picchietti, Daniel L. ;
Auerbach, Michael ;
Cho, Yong Won ;
Connor, James R. ;
Earley, Christopher J. ;
Garcia-Borreguero, Diego ;
Kotagal, Suresh ;
Manconi, Mauro ;
Ondo, William ;
Ulfberg, Jan ;
Winkelman, John W. .
SLEEP MEDICINE, 2018, 41 :27-44
[3]   Regional distribution of Fluoro-Jade B staining in the hippocampus following traumatic brain injury [J].
Anderson, KJ ;
Miller, KM ;
Fugaccia, I ;
Scheff, SW .
EXPERIMENTAL NEUROLOGY, 2005, 193 (01) :125-130
[4]   Iron accumulation confers neurotoxicity to a vulnerable population of nigral neurons: implications for Parkinson's disease [J].
Ayton, Scott ;
Lei, Peng ;
Adlard, Paul A. ;
Volitakis, Irene ;
Cherny, Robert A. ;
Bush, Ashley I. ;
Finkelstein, David I. .
MOLECULAR NEURODEGENERATION, 2014, 9
[5]   Calpain-1 and Calpain-2: The Yin and Yang of Synaptic Plasticity and Neurodegeneration [J].
Baudry, Michel ;
Bi, Xiaoning .
TRENDS IN NEUROSCIENCES, 2016, 39 (04) :235-245
[6]  
Berg A.T., 1996, EPILEPTIC DISORD, V14, P383, DOI [10.1684/epd.2015.0751, DOI 10.1684/EPD.2015.0751]
[7]   The sites and topology of mitochondrial superoxide production [J].
Brand, Martin D. .
EXPERIMENTAL GERONTOLOGY, 2010, 45 (7-8) :466-472
[8]   Ferroptosis and Its Role in Epilepsy [J].
Cai, Yuxiang ;
Yang, Zhiquan .
FRONTIERS IN CELLULAR NEUROSCIENCE, 2021, 15
[9]  
Cattano D, 2011, MINERVA ANESTESIOL, V77, P571
[10]   Mitochondrial matters of the brain: mitochondrial dysfunction and oxidative status in epilepsy [J].
Chang, Sue -Joan ;
Yu, Bu-Chin .
JOURNAL OF BIOENERGETICS AND BIOMEMBRANES, 2010, 42 (06) :457-459