南方医科大学学报 ›› 2026, Vol. 46 ›› Issue (8): 1878-1885.doi: 10.12122/j.issn.1673-4254.2026.08.15
• • 上一篇
余东焜1(
), 支仕杰1, 刘彦波1, 杨治伦1, 刘娟2, 邵钰1(
)
收稿日期:2025-12-15
出版日期:2026-08-20
发布日期:2026-08-01
通讯作者:
邵钰
E-mail:766485747@qq.com;20190036@nxmu.edu.cn
作者简介:余东焜,在读硕士研究生,E-mail: 766485747@qq.com
基金资助:
Dongkun YU1(
), Shijie ZHI1, Yanbo LIU1, Zhilun YANG1, Juan LIU2, Yu SHAO1(
)
Received:2025-12-15
Online:2026-08-20
Published:2026-08-01
Contact:
Yu SHAO
E-mail:766485747@qq.com;20190036@nxmu.edu.cn
摘要:
目 的 探究 miR-124对MK-801介导小鼠焦虑样行为的调控作用。 方法 将60只6周龄C57BL/6J雄性小鼠随机分为CON组、MK-801+Saline组、MK-801+Vehicle组和MK-801+miR-124组,每组15只。通过腹腔注射MK-801诱导焦虑样模型,脑立体定位注射mmu-miR-124-3p mimics以过表达miR-124,RT-qPCR实验检测miR-124是否成功转染,行为学实验检测miR-124对小鼠焦虑样行为的影响,Western blotting实验检测miR-124对小鼠海马神经元蛋白表达的影响,免疫荧光染色实验检测miR-124对神经干细胞数量、新增殖神经元数量及神经元分化的影响。 结果 miR-124上调后海马miR-124水平显著升高(P<0.05),小鼠旷场实验中总活动距离(P<0.05)与中央区活动距离(P<0.001)、高架十字迷宫实验中开放臂活动时间百分比(P<0.05)均显著升高,小鼠海马Tuj1蛋白表达量显著增加(P<0.001),小鼠海马神经干细胞数量和新生神经元数量均显著增多(P<0.001),新生神经元与成熟神经元荧光面积比值亦显著增加(P<0.001)。 结论 miR-124可通过促进海马神经干细胞增殖分化、增加神经元数量,改善MK-801介导的小鼠焦虑样行为,为焦虑症治疗提供潜在靶点。
余东焜, 支仕杰, 刘彦波, 杨治伦, 刘娟, 邵钰. miR-124通过促进海马神经干细胞增殖分化改善MK-801介导的小鼠焦虑样行为[J]. 南方医科大学学报, 2026, 46(8): 1878-1885.
Dongkun YU, Shijie ZHI, Yanbo LIU, Zhilun YANG, Juan LIU, Yu SHAO. MiR-124 ameliorates MK-801-induced anxiety-like behaviors in mice by promoting hippocampal neural stem cell proliferation and differentiation[J]. Journal of Southern Medical University, 2026, 46(8): 1878-1885.
图1 RT-qPCR验证病毒转染
Fig.1 RT-qPCR validation of viral transfection. CON: Control group; MK-801: Dizocilpine; Vehicle: Adeno-associated Virus Serotype 9-Glycoprotein-2-Negative Control; miR-124: Mus musculus microRNA-124-3p mimics. *P<0.05 vs CON group; #P<0.05 vs MK-801+Saline group (n=3).
图2 行为学实验检测miR-124对小鼠焦虑样行为的改善情况
Fig.2 Behavioral tests for assessing the ameliorative effects of miR-124 on anxiety-like behaviors in mice. A: Trajectory diagram in open field test. B: Trajectory diagram in elevated cross maze test. C: Comparison of distance traveled in the center region in open field test. D: Comparison of total distance traveled in open field test. E: Comparison of percentage of time in the open arm in the elevated cross maze test. *P<0.05, **P<0.01, ***P<0.001 vs CON group; #P<0.05, ##P<0.01, ###P<0.001 vs MK-801+Saline group (n=8).
图3 miR-124逆转MK-801抑制Tuj1蛋白的作用
Fig.3 miR-124 reverses the inhibitory effect of MK-801 on Tuj1 protein. A: Tuj1 protein bands in Western blotting. B: Tuj1 protein expression levels in the 4 groups. ***P<0.001 vs CON group; ###P<0.001 vs MK-801+Saline group (n=6).
图6 miR-124逆转MK-801抑制小鼠DCX与NeuN正常比例的作用
Fig.6 miR-124 reverses the inhibitory effect of MK-801 on DCX to NeuN ratio in the mice (Scale bar=100 μm). A: DCX and NeuN fluorescence staining. B: DCX and NeuN ratio statistics. ****P<0.0001 vs CON group; ####P<0.0001 vs MK-801+Saline group; Zoom in the image to 5 times its original size (n=9).
| [1] | Leichsenring F, Leweke F. Social anxiety disorder[J]. N Engl J Med, 2017, 376(23): 2255-2264. doi:10.1056/nejmcp1614701 |
| [2] | Xia MY, Lu JM, Lan JB, et al. Elevated IL-22 as a result of stress-induced gut leakage suppresses septal neuron activation to ameliorate anxiety-like behavior[J]. Immunity, 2025, 58(1): 218-231. e12. doi:10.1016/j.immuni.2024.11.008 |
| [3] | Kim E, Du HR, Tan YQ, et al. Prefrontal cortex astrocytes modulate distinct neuronal populations to control anxiety-like behavior[J]. Nat Commun, 2025, 16(1): 7819. doi:10.1038/s41467-025-63131-9 |
| [4] | Pan TY, Pan YJ, Tsai SJ, et al. Focused ultrasound stimulates the prefrontal cortex and prevents MK-801-induced psychiatric symptoms of schizophrenia in rats[J]. Schizophr Bull, 2024, 50(1): 120-131. doi:10.1093/schbul/sbad078 |
| [5] | Ding J, Shao Y, Zhou H-H, et al. Effect of NMDA on proliferation and apoptosis in hippocampal neural stem cells treated with MK-801 [J]. Experimental and Therapeutic Medicine, 2018, 16(2): 1137-142. |
| [6] | Patel AJ, Hunt A, Sanfeliu C. Cell-type specific effects of N-methyl-d-aspartate on biochemical differentiation of subcortical neurons in culture[J]. Intl J Devlp Neuroscience, 1990, 8(4): 379-89. doi:10.1016/0736-5748(90)90071-9 |
| [7] | Elliott T, Liu KY, Hazan J, et al. Hippocampal neurogenesis in adult Primates: a systematic review[J]. Mol Psychiatry, 2025, 30(3): 1195-206. doi:10.1038/s41380-024-02815-y |
| [8] | Boldrini M, Fulmore CA, Tartt AN, et al. Human hippocampal neurogenesis persists throughout aging[J]. Cell Stem Cell, 2018, 22(4): 589-99. e5. doi:10.1016/j.stem.2018.03.015 |
| [9] | Gaziova I, Gazi M, Mar J, et al. Restriction on self-renewing asymmetric division is coupled to terminal asymmetric division in the Drosophila CNS[J]. PLoS Genet, 2020, 16(9): e1009011. doi:10.1371/journal.pgen.1009011 |
| [10] | Geng AQ, Qiu RX, Murai K, et al. KIF20A/MKLP2 regulates the division modes of neural progenitor cells during cortical development[J]. Nat Commun, 2018, 9(1): 2707. doi:10.1038/s41467-018-05152-1 |
| [11] | Son G, Na Y, Kim Y, et al. miR-124 coordinates metabolic regulators acting at early stages of human neurogenesis[J]. Commun Biol, 2024, 7(1): 1393. doi:10.1038/s42003-024-07089-2 |
| [12] | Xiong L, Zhou H, Zhao Q, et al. Overexpression of miR-124 Protects Against Neurological Dysfunction Induced by Neonatal Hypoxic-Ischemic Brain Injury [J]. Cellular and Molecular Neurobiology, 2020, 40(5): 737-50. doi:10.1007/s10571-019-00769-2 |
| [13] | Choi C, Kim T, Chang KT, et al. DSCR1-mediated TET1 splicing regulates miR-124 expression to control adult hippocampal neurogenesis[J]. EMBO J, 2019, 38(14): e101293. doi:10.15252/embj.2018101293 |
| [14] | Hinojosa-Godinez A, Jave-Suarez LF, Flores-Soto M, et al. Melatonin modifies SOX2+ cell proliferation in dentate gyrus and modulates SIRT1 and MECP2 in long-term sleep deprivation [J]. Neural Regeneration Research, 2019, 14(10): 1787-95. doi:10.4103/1673-5374.257537 |
| [15] | 裴月娇, 刘慧敏, 昕 宇, 等. miR-124通过调控PI3K/AKT信号通路改善睡眠剥夺大鼠认知功能[J]. 南方医科大学学报, 2025, 45(2): 340-6. |
| [16] | Zhang Q, Xia YY, Luo HB, et al. Codonopsis pilosula polysaccharide attenuates tau hyperphosphorylation and cognitive impairments in hTau infected mice[J]. Front Mol Neurosci, 2018, 11: 437. doi:10.3389/fnmol.2018.00437 |
| [17] | Duman H, Duman H, Puşuroğlu M, et al. Anxiety disorders and depression are associated with resistant hypertension[J]. Adv Clin Exp Med, 2024, 33(2): 111-8. doi:10.17219/acem/166304 |
| [18] | Kornhuber J, Zoicas I. Brain region-dependent effects of neuropeptide Y on conditioned social fear and anxiety-like behavior in male mice[J]. Int J Mol Sci, 2021, 22(7): 3695. doi:10.3390/ijms22073695 |
| [19] | Shi HJ, Wang S, Wang XP, et al. Hippocampus: molecular, cellular, and circuit features in anxiety[J]. Neurosci Bull, 2023, 39(6): 1009-26. doi:10.1007/s12264-023-01020-1 |
| [20] | Zhang YL, Pang YT, Feng WX, et al. miR-124 regulates early isolation-induced social abnormalities via inhibiting myelinogenesis in the medial prefrontal cortex[J]. Cell Mol Life Sci, 2022, 79(9): 507. doi:10.1007/s00018-022-04533-6 |
| [21] | Todorov H, Weißbach S, Schlichtholz L, et al. Stage-specific expression patterns and co-targeting relationships among miRNAs in the developing mouse cerebral cortex[J]. Commun Biol, 2024, 7(1): 1366. doi:10.1038/s42003-024-07092-7 |
| [22] | Mannironi C, Camon J, De Vito F, et al. Acute stress alters amygdala microRNA miR-135a and miR-124 expression: inferences for corticosteroid dependent stress response[J]. PLoS One, 2013, 8(9): e73385. doi:10.1371/journal.pone.0073385 |
| [23] | Jiao SJ, Liu YL, Yao YB, et al. miR-124 promotes proliferation and differentiation of neuronal stem cells through inactivating Notch pathway[J]. Cell Biosci, 2017, 7: 68. doi:10.1186/s13578-017-0194-y |
| [24] | Jiao S, Liu Y, Yao Y, et al. miR-124 promotes proliferation and neural differentiation of neural stem cells through targeting DACT1 and activating Wnt/β-catenin pathways [J]. Molecular and Cellular Biochemistry, 2018, 449(1-2): 305-14. doi:10.1007/s11010-018-3367-z |
| [25] | Murphy CP, Singewald N. Role of microRNAs in anxiety and anxiety-related disorders[J]. Curr Top Behav Neurosci, 2019, 42: 185-219. doi:10.1007/7854_2019_109 |
| [26] | Giordano-Santini R, Kaulich E, Galbraith KM, et al. Fusogen-mediated neuron-neuron fusion disrupts neural circuit connectivity and alters animal behavior[J]. Proc Natl Acad Sci USA, 2020, 117(37): 23054-65. doi:10.1073/pnas.1919063117 |
| [27] | Hassan A, Shahid M, Hayat F, et al. Improving the survival time of multiagents in social dilemmas through neurotransmitter-based deep Q-learning model of emotions[J]. J Healthc Eng, 2022, 2022: 3449433. doi:10.1155/2022/3449433 |
| [28] | Capilla-López MD, Deprada A, Andrade-Talavera Y, et al. Synaptic vulnerability to amyloid-β and tau pathologies differentially disrupts emotional and memory neural circuits[J]. Mol Psychiatry, 2025, 30(7): 2966-79. doi:10.1038/s41380-025-02901-9 |
| [29] | Ziehn MO, Avedisian AA, Tiwari-Woodruff S, et al. Hippocampal CA1 atrophy and synaptic loss during experimental autoimmune encephalomyelitis, EAE[J]. Lab Invest, 2010, 90(5): 774-86. doi:10.1038/labinvest.2010.6 |
| [30] | Dittmann NL, Chen L, Voronova A. Regulation of neural stem cells by innervating neurons[J]. J Neurochem, 2025, 169(1): e16287. doi:10.1111/jnc.16287 |
| [31] | Kawase K, Nakamura Y, Wolbeck L, et al. Significance of birth in the maintenance of quiescent neural stem cells[J]. Sci Adv, 2025, 11(4): eadn6377. doi:10.1126/sciadv.adn6377 |
| [32] | Yu WJ, Fang HW, Zhang L, et al. Reversible changes in BDNF expression in MK-801-induced hippocampal astrocytes through NMDAR/PI3K/ERK signaling[J]. Front Cell Neurosci, 2021, 15: 672136. doi:10.3389/fncel.2021.672136 |
| [33] | Zhao YY, Zhang L, Wang MM, et al. Anxiety specific response and contribution of active hippocampal neural stem cells to chronic pain through Wnt/β-catenin signaling in mice[J]. Front Mol Neurosci, 2018, 11: 296. doi:10.3389/fnmol.2018.00296 |
| [34] | Li XW, Lu YY, Zhang SY, et al. Mechanism of neural regeneration induced by natural product LY01 in the 5 × FAD mouse model of Alzheimer’s disease[J]. Front Pharmacol, 2022, 13: 926123. doi:10.3389/fphar.2022.926123 |
| [35] | Osacka J, Kiss A, Bacova Z, et al. Effect of haloperidol and olanzapine on hippocampal cells' proliferation in animal model of schizophrenia[J]. Int J Mol Sci, 2022, 23(14): 7711. doi:10.3390/ijms23147711 |
| [36] | Ni W, Ramalingam M, Li YM, et al. Immunomodulatory and anti-inflammatory effect of neural stem/progenitor cells in the central nervous system[J]. Stem Cell Rev Rep, 2023, 19(4): 866-85. doi:10.1007/s12015-022-10501-1 |
| [37] | Mattei V, Martellucci S, Pulcini F, et al. Regenerative potential of DPSCs and revascularization: direct, paracrine or autocrine effect?[J]. Stem Cell Rev Rep, 2021, 17(5): 1635-46. doi:10.1007/s12015-021-10162-6 |
| [38] | Ma ZQ, Liu T, Liu L, et al. Epidermal neural crest stem cell conditioned medium enhances spinal cord injury recovery via PI3K/AKT-mediated neuronal apoptosis suppression[J]. Neurochem Res, 2024, 49(10): 2854-70. doi:10.1007/s11064-024-04207-8 |
| [39] | Jing JT, Jiang HM, Zhang L. Endothelial progenitor cells promote neural stem cell proliferation in hypoxic conditions through VEGF via the PI3K/AKT pathway[J]. J Recept Signal Transduct, 2022, 42(5): 479-85. doi:10.1080/10799893.2021.2019275 |
| [1] | 何丽玲, 吴丹, 赖碧璇, 牛绮萱, 陈俊华, 高建红, 龙清华, 王政喻. 无忧汤通过激活Nrf2/HO-1通路抑制铁死亡减轻慢性睡眠剥夺模型大鼠海马神经元损伤并改善突触可塑性[J]. 南方医科大学学报, 2026, 46(8): 1754-1763. |
| [2] | 尹维帅, 李飞, 曹奕, 杨琪琪, 邓则天, 曹世杰, 孙永旗, 毕昕阳, 梁正鹏, 伍思嘉, 王保国. 化瘀通络灸联合神经干细胞移植对血管性痴呆大鼠Drp1/Mfn蛋白表达及线粒体动力学的影响[J]. 南方医科大学学报, 2026, 46(7): 1520-1532. |
| [3] | 陈萌萌, 郭润芳, 赵文洁, 王咏琪, 左芦根, 刘牧林, 李彬. 多维特征下的消化道恶性肿瘤患者焦虑情绪识别模型构建:基于多种可解释性机器学习算法[J]. 南方医科大学学报, 2026, 46(7): 1660-1670. |
| [4] | 史雪珂, 陈婷玉, 高静, 吴明莉, 李瑞青, 苏凯奇, 吕转, 宋晓磊, 冯晓东. 电针血清通过激活PI3K/Akt信号通路改善OGD/R模型HT22神经元突触可塑性[J]. 南方医科大学学报, 2026, 46(6): 1407-1415. |
| [5] | 刘安澜, 过伟峰, 李建香, 张天鸽, 徐丹. KLF10通过下调NF-κB/NLRP3通路改善大鼠焦虑性抑郁行为及神经炎症[J]. 南方医科大学学报, 2026, 46(5): 994-1005. |
| [6] | 张倬宁, 郝新宇, 曹福羊, 郭永馨, 郭舒婷, 蔡辰, 米卫东, 仝黎. 艾司氯胺酮通过激活小鼠mPFC区谷氨酸能神经元发挥抗抑郁样作用[J]. 南方医科大学学报, 2026, 46(3): 489-496. |
| [7] | 孙芷菁, 李伟, 唐信峰, 余萌. Liebowitz儿童和青少年社交焦虑量表的修订与信效度检验[J]. 南方医科大学学报, 2026, 46(3): 686-692. |
| [8] | 杨毓甲, 杨丽芳, 吴雅玲, 段兆达, 于春泽, 吴春云, 于建云, 杨力. 大麻二酚经PERK-eIF2α-ATF4-CHOP通路减轻多重脑震荡大鼠的神经元内质网应激和凋亡[J]. 南方医科大学学报, 2025, 45(6): 1240-1250. |
| [9] | 胡琼琼, 李文沛, 胥丽霞, 官瑞磊, 张东亚, 蒋胶胶, 王宁, 杨改清. 神经特异性跨膜蛋白240与过氧化物酶体共定位并激活Rho GDP解离抑制因子β[J]. 南方医科大学学报, 2025, 45(6): 1260-1269. |
| [10] | 何光侣, 储婉玉, 李妍, 盛鑫, 罗浩, 徐爱萍, 卞命杰, 张环环, 汪萌芽, 郑超. Orexin-A通过调节促离子型谷氨酸受体促进脊髓损伤大鼠运动功能恢复[J]. 南方医科大学学报, 2025, 45(5): 1023-1030. |
| [11] | 陈昌锋, 方勤, 高银环, 王烈成, 陈磊. 丰富环境通过调控前扣带回皮层锥体神经元兴奋性缓解束缚应激诱导的小鼠焦虑样行为[J]. 南方医科大学学报, 2025, 45(5): 962-968. |
| [12] | 陈悦, 肖林雨, 任侣, 宋雪, 李静, 胡建国. 水晶兰苷通过抑制PI3K/AKT信号通路减少神经元凋亡改善脊髓损伤后小鼠的运动功能[J]. 南方医科大学学报, 2025, 45(4): 774-784. |
| [13] | 裴月娇, 刘慧敏, 昕宇, 刘波. miR-124通过调控PI3K/AKT信号通路改善睡眠剥夺大鼠认知功能[J]. 南方医科大学学报, 2025, 45(2): 340-346. |
| [14] | 夏金枝, 陈悦, 任侣, 李静, 宋雪, 陶露, 胡建国. 咖啡豆醇通过调控IκBα/NF-κB通路抑制小胶质细胞活化改善脊髓损伤后小鼠的运动功能[J]. 南方医科大学学报, 2025, 45(12): 2561-2572. |
| [15] | 马丹丹, 程洁, 张虹, 刘广, 宋凯. 电针通过Bcl-2/Bax/caspase-3信号通路修复海马线粒体损伤改善创伤后应激障碍大鼠的焦虑症状[J]. 南方医科大学学报, 2025, 45(11): 2375-2384. |
| 阅读次数 | ||||||
|
全文 |
|
|||||
|
摘要 |
|
|||||