Liu Penglai, Xu Jiang, Chen Yilan, Xu Qi, Zhang Wei, Hu Bin, Li Anan, Zhu Qiuju
Jiangsu Key Laboratory of Brain Disease Bioinformation, Research Center for Biochemistry and Molecular Biology Xuzhou Medical University Xuzhou China.
J Am Heart Assoc. 2024 Dec 17;13(24):e036146. doi: 10.1161/JAHA.124.036146. Epub 2024 Dec 13.
Although there has been limited research into the perturbation of electrophysiological activity in the brain after ischemia, the activity signatures during ischemia and reperfusion remain to be fully elucidated. We aim to comprehensively describe these electrophysiological signatures and interrogate their correlation with ischemic damage during global cerebral ischemia and reperfusion.
We used the 4-vessel occlusion method of inducing global cerebral ischemia in rats. We used in vivo electrophysiological techniques to simultaneously record single units, scalp electroencephalogram, and local field potentials in awake animals. Neuronal damage and astrocyte reactivation were examined by immunofluorescence, immunoblotting, and quantitative real-time reverse-transcription polymerase chain reaction under chemogenetic inhibition of glutamatergic neurons. Electroencephalogram/local field potentials power and phase-amplitude coupling of the theta and low-gamma bands were reduced during ischemia and the acute phase of reperfusion. The firing rate of single units was enhanced by ischemia-reperfusion, and the phase relationship between the local field potentials theta band and neuronal firing was altered. Precise inhibition of hippocampus CA1 pyramidal neuron hyperactivity by chemogenetics rescued the firing dysfunction, ischemic neuronal damage, and A1 astrocyte activation.
Our results provide a comprehensive description of the characteristics of electrophysiological activity that accompany ischemia-reperfusion and highlight the significance of this activity in ischemic damage.
尽管关于缺血后脑电生理活动紊乱的研究有限,但缺血和再灌注期间的活动特征仍有待充分阐明。我们旨在全面描述这些电生理特征,并探究其与全脑缺血和再灌注期间缺血损伤的相关性。
我们采用四动脉闭塞法诱导大鼠全脑缺血。我们使用体内电生理技术在清醒动物中同时记录单个神经元、头皮脑电图和局部场电位。在对谷氨酸能神经元进行化学遗传学抑制的情况下,通过免疫荧光、免疫印迹和定量实时逆转录聚合酶链反应检测神经元损伤和星形胶质细胞再激活。在缺血和再灌注急性期,脑电图/局部场电位的θ波和低γ波段的功率以及相位-幅度耦合降低。缺血-再灌注增强了单个神经元的放电频率,并且局部场电位θ波段与神经元放电之间的相位关系发生改变。通过化学遗传学精确抑制海马CA1锥体神经元的过度活动可挽救放电功能障碍、缺血性神经元损伤和A1星形胶质细胞激活。
我们的结果全面描述了伴随缺血-再灌注的电生理活动特征,并突出了这种活动在缺血损伤中的重要性。