2024年第51卷第7期目录

浏览其它刊期:  
  
 
封面故事:啮齿动物后肢去负荷模型是一种模拟失重效应的地基模拟技术,被用来研究空间失重 环境引起的生理改变及对抗措施的改善效果。空间失重环境可导致航天员出现认知功能的改变和 产生负面情绪。重复经颅磁刺激是一种具有重要临床应用价值的神经调控技术,其作用机制目前 仍不明确。频率被认为是重要的作用因素之一。本论文创新性地将两种频率复合使用,探索对不 同症状的改善效果,并采用膜片钳技术分析神经元兴奋性的改变。结果显示复合频率刺激能够同 时有效地改善后肢去负荷小鼠的认知障碍和负性情绪,并影响神经元兴奋性和离子通道动力学特 性。该文对重复经颅磁刺激作用模式的丰富,改善机制的深入以及应用于空间失重场景的拓展均 具有重要意义。
(赵峻峤,朱明强,朱海军,付蕊,张泽,王佳乐,丁冲. 复合频率刺激对后肢去负荷小鼠海马齿状回区颗 粒神经元作用的电生理研究,本期第1670~1686 页)

Cover Story:Objective In recent years, the negative impact of microgravity on astronauts’ nervous systems has received widespread attention. The repetitive transcranial magnetic stimulation (rTMS) technology has shown significant positive effects in the treatment of neurological and psychiatric disorders. The potential benefits of combined frequency stimulation (CFS) which combines different frequency stimulation patterns in ameliorating neurological dysfunctions induced by the microgravity environment, still require in-depth investigation. Exploring the therapeutic effects and electrophysiological mechanisms of CFS in improving various neurological disorders caused by microgravity holds significant importance for neuroscience and the clinical application of magnetic stimulation.Methods This study employed 40 C57BL/6 mice, randomly divided into 5 groups: sham group, hindlimb unloading (HU) group, 10 Hz group, 20 Hz group, and combined frequency stimulation (10 Hz+20 Hz, CFS) group. Mice in all groups except the sham group received 14 d of simulated microgravity conditions along with 14 d of repetitive transcranial magnetic stimulation. The effects of CFS on negative emotions and spatial cognitive abilities were assessed through sucrose preference tests and water maze experiments. Finally, patch-clamp techniques were used to record action potentials, resting membrane potentials, and ion channel dynamics of granule neurons in the hippocampal dentate gyrus (DG) region.Results Compared to the single-frequency stimulation group, behavioral results indicated that the combined frequency stimulation (10 Hz+20 Hz) significantly improved cognitive impairments and negative emotions in simulated microgravity mice. Electrophysiological experiments revealed a decrease in excitability of granule neurons in the hippocampal DG region after HU manipulation, whereas the combined frequency stimulation notably enhanced neuronal excitability and improved the dynamic characteristics of voltage-gated Na+ and K+ channels.Conclusion The repetitive transcranial magnetic stimulation with combined frequencies (10 Hz+20 Hz) effectively ameliorates cognitive impairments and negative emotions in simulated microgravity mice. This improvement is likely attributed to the influence of combined frequency stimulation on neuronal excitability and the dynamic characteristics of Na+ and K+ channels. Consequently, this study holds the promise to provide a theoretical basis for alleviating cognitive and emotional disorders induced by microgravity environments.

综述与专论

Hippo信号通路及其相关miRNA在阿尔茨海默病与帕金森病中的潜在作用机制刘醒然,张蒙,寇现娟  [摘要][PDF][HTML]

酶抑制剂及其构效优化在阿尔茨海默病中的应用储超扬,肖彪,单江晖,陈是燏,张楚霞,周钰愉,方甜园,林志成,谢凯,徐淑君,李丽萍  [摘要][PDF][HTML]

维生素D对脑内多巴胺神经系统的调节作用王华林,赵旭东,刘冉,李科,侯莉娟  [摘要][PDF][HTML]

肿瘤治疗:靶向物质代谢重编程诱导铁死亡张金萍,王栎清,王默,王欣悦,牟小琴,郑锡,程创,贺靓,邹黎黎,刘晓雯  [摘要][PDF][HTML]

载脂蛋白E在恶性肿瘤中的作用机制高博文,王丽,徐泱  [摘要][PDF][HTML]

核酸适配体在膀胱癌诊疗中的应用冯树维,张明鑫,武晓秋,林恒伊,邴涛  [摘要][PDF][HTML]

软骨细胞线粒体损伤对骨关节炎的影响李振伟,侯靖宇,林宇泽,张智奇,刘尚毅,刘晓雯,寿康全  [摘要][PDF][HTML]

运动通过调节骨自噬途径防治骨质疏松症的作用及可能机制代新宇,李斌,靳丹,衣雪洁,黄睿奇,高海宁  [摘要][PDF][HTML]

细菌生物膜耐药机制与纳米生物治疗研究何卓俊,陈玉颖,周泱,戴桂琴,刘德亮,刘孟德,高健辉,陈泽,邓嘉玉,梁光炎,魏莉,赵鹏飞,卢洪洲,郑明彬  [摘要][PDF][HTML]

微流控离子浓差极化芯片研制及其生化检测中的应用贺志恒,王小丽,葛闯,徐溢  [摘要][PDF][HTML]

串行晶体学样品输运方法概述李凌昊,李冰,翁祖谦  [摘要][PDF][HTML]

脑电图信号在疲劳驾驶检测中的应用与挑战宗少杰,董芳,程永欣,喻大华,袁凯,王娟,马宇欣,张飞  [摘要][PDF][HTML]

研究报告

复合频率刺激对后肢去负荷小鼠海马齿状回区颗粒神经元作用的电生理研究赵峻峤,朱明强,朱海军,付蕊,张泽,王佳乐,丁冲  [摘要][PDF][HTML]

Hsa-miR-650通过靶向RAC1抑制NF2阴性脑膜瘤的生长张超,李朋,王博,汪颖,刘丕楠  [摘要][PDF][HTML]

不同来源乳汁外泌体蛋白质及其磷酸化修饰差异分析刘昌梅,胡一帆,陈文彦,刘丹,施杰,杨刚龙  [摘要][PDF][HTML]

技术与方法

基于多层网络控制的个体化癌症驱动基因识别方法张桐,张绍武,李岩,谢明宇  [摘要][PDF][HTML]

京期出证字第0624号 版权所有:  您是本站第    位访问者
主管单位:中国科学院 主办单位:中国科学院生物物理研究所和中国生物物理学会 地址:北京市朝阳区大屯路15号
电话:010-64888459 电子邮件:prog@ibp.ac.cn
技术支持:北京勤云科技发展有限公司
京ICP备05023138号-1

京公网安备 11010502031771号