Alonge, K. M., Herbert, M. J., Yagi, M., Cook, D. G., Banks, W. A., & Logsdon, A. F. (2021). Changes in brain matrix glycan sulfation associate with reactive gliosis and motor coordination in mice with head trauma. Frontier in Behavioral Neuroscience, 15, 745288. https://doi.org/10.3389/fnbeh.2021.745288
Benavides, G. A., Liang, Q., Dodson, M., Darley-Usmar, V., & Zhang, J. (2013). Inhibition of autophagy and glycolysis by nitric oxide during hypoxia-reoxygenation impairs cellular bioenergetics and promotes cell death in primary neurons. Free Radical Biology & Medicine, 65, 1215–1228. https://doi.org/10.1016/j.freeradbiomed.2013.09.006
Berretta, S., Pantazopoulos, H., Markota, M., Brown, C., & Batzianouli, E. T. (2015). Losing the sugar coating: Potential impact of perineuronal net abnormalities on interneurons in schizophrenia. Schizophrenia Research, 167(1–3), 18–27. https://doi.org/10.1016/j.schres.2014.12.040
Blacktop, J. M., Todd, R. P., & Sorg, B. A. (2017). Role of perineuronal nets in the anterior dorsal lateral hypothalamic area in the acquisition of cocaine-induced conditioned place preference and self-administration. Neuropharmacology, 118, 124–136. https://doi.org/10.1016/j.neuropharm.2017.03.018
Bonnavion, P., Mickelsen, L. E., Fujita, A., de Lecea, L., & Jackson, A. C. (2016). Hubs and spokes of the lateral hypothalamus: Cell types, circuits and behaviour. Journal of Physiology, 594(22), 6443–6462. https://doi.org/10.1113/jp271946
Bosiacki, M., Gąssowska-Dobrowolska, M., Kojder, K., Fabiańska, M., Jeżewski, D., Gutowska, I., & Lubkowska, A. (2019). Perineuronal nets and their role in synaptic homeostasis. International Journal of Molecular Science. https://doi.org/10.3390/ijms20174108
Crawford, E. D., Seaman, J. E., Agard, N., Hsu, G. W., Julien, O., Mahrus, S., Nguyen, H., Shimbo, K., Yoshihara, H. A. I., Zhuang, M., & Chalkley, R. J. (2013). The degrabase: A database of proteolysis in healthy and apoptotic human cells. Molecular and Cellular Proteomics, 12(3), 813–824. https://doi.org/10.1074/mcp.O112.024372
Djavaheri-Mergny, M., Maiuri, M. C., & Kroemer, G. (2010). Cross talk between apoptosis and autophagy by caspase-mediated cleavage of Beclin 1. Oncogene, 29(12), 1717–1719. https://doi.org/10.1038/onc.2009.519
Do, K. Q., Cuenod, M., & Hensch, T. K. (2015). Targeting oxidative stress and aberrant critical period plasticity in the developmental trajectory to schizophrenia. Schizophrenia Bulletin, 41(4), 835–846. https://doi.org/10.1093/schbul/sbv065
Duan, K., Gu, Q., Petralia, R. S., Wang, Y. X., Panja, D., Liu, X., Lehmann, M. L., Zhu, H., Zhu, J., & Li, Z. (2021). Mitophagy in the basolateral amygdala mediates increased anxiety induced by aversive social experience. Neuron, 109(23), 3793-3809.e3798. https://doi.org/10.1016/j.neuron.2021.09.008
Dzyubenko, E., Gottschling, C., & Faissner, A. (2016). Neuron-Glia interactions in neural plasticity: contributions of neural extracellular matrix and perineuronal nets. Neural Plasticity, 2016, 5214961. https://doi.org/10.1155/2016/5214961
Fawcett, J. W., Oohashi, T., & Pizzorusso, T. (2019). The roles of perineuronal nets and the perinodal extracellular matrix in neuronal function. Nature Reviews Neuroscience, 20(8), 451–465. https://doi.org/10.1038/s41583-019-0196-3
Feng, Y., Cui, Y., Gao, J. L., Li, M. H., Li, R., Jiang, X. H., Tian, Y. X., Wang, K. J., Cui, C. M., & Cui, J. Z. (2016). Resveratrol attenuates neuronal autophagy and inflammatory injury by inhibiting the TLR4/NF-κB signaling pathway in experimental traumatic brain injury. International Journal of Molecular Medicine, 37(4), 921–930. https://doi.org/10.3892/ijmm.2016.2495
Gao, C., Chen, X., Xu, H., Guo, H., Zheng, L., Yan, Y., Ren, Z., Luo, C., Gao, Y., Wang, Z., Tao, L., & Wang, T. (2022). Restraint stress delays the recovery of neurological impairments and exacerbates brain damages through activating endoplasmic reticulum stress-mediated neurodegeneration/autophagy/apopotosis post moderate traumatic brain injury. Molecular Neurobiology, 59(3), 1560–1576. https://doi.org/10.1007/s12035-022-02735-4
Hassani, O. K., Henny, P., Lee, M. G., & Jones, B. E. (2010). GABAergic neurons intermingled with orexin and MCH neurons in the lateral hypothalamus discharge maximally during sleep. European Journal of Neuroscience, 32(3), 448–457. https://doi.org/10.1111/j.1460-9568.2010.07295.x
Hsieh, T. H., Lee, H. H. C., Hameed, M. Q., Pascual-Leone, A., Hensch, T. K., & Rotenberg, A. (2017). Trajectory of parvalbumin cell impairment and loss of cortical inhibition in traumatic brain injury. Cerebral Cortex, 27(12), 5509–5524. https://doi.org/10.1093/cercor/bhw318
Huang, S. X., Qiu, G., Cheng, F. R., Pei, Z., Yang, Z., Deng, X. H., Zhu, J. H., Chen, L., Chen, C. C., Lin, W. F., Liu, Y., Liu, Z., & Zhu, F. Q. (2018). Berberine protects secondary injury in mice with traumatic brain injury through anti-oxidative and anti-inflammatory modulation. Neurochemical Research, 43(9), 1814–1825. https://doi.org/10.1007/s11064-018-2597-5
Jung, S., Choe, S., Woo, H., Jeong, H., An, H. K., Moon, H., Ryu, H. Y., Yeo, B. K., Lee, Y. W., Choi, H., Mun, J. Y., Sun, W., Choe, H. K., Kim, E. K., & Yu, S. W. (2020). Autophagic death of neural stem cells mediates chronic stress-induced decline of adult hippocampal neurogenesis and cognitive deficits. Autophagy, 16(3), 512–530. https://doi.org/10.1080/15548627.2019.1630222
Kang, R., Zeh, H. J., Lotze, M. T., & Tang, D. (2011). The Beclin 1 network regulates autophagy and apoptosis. Cell Death and Differentiation, 18(4), 571–580. https://doi.org/10.1038/cdd.2010.191
Karnani, M. M., Szabó, G., Erdélyi, F., & Burdakov, D. (2013). Lateral hypothalamic GAD65 neurons are spontaneously firing and distinct from orexin- and melanin-concentrating hormone neurons. Journal of Physiology, 591(4), 933–953. https://doi.org/10.1113/jphysiol.2012.243493
Kondo, A., Shahpasand, K., Mannix, R., Qiu, J., Moncaster, J., Chen, C. H., Yao, Y., Lin, Y. M., Driver, J. A., Sun, Y., Wei, S., Luo, M. L., Albayram, O., Huang, P., Rotenberg, A., Ryo, A., Goldstein, L. E., Pascual-Leone, A., Mckee, A. C., … Lu, K. P. (2015). Antibody against early driver of neurodegeneration cis P-tau blocks brain injury and tauopathy. Nature, 523(7561), 431–436. https://doi.org/10.1038/nature14658
Kumar, S. (2007). Caspase function in programmed cell death. Cell Death and Differentiation, 14(1), 32–43. https://doi.org/10.1038/sj.cdd.4402060
Li, Y., Zhang, L. M., Zhang, D. X., Zheng, W. C., Bai, Y., Bai, J., Fu, L., & Wang, X. P. (2020). CORM-3 ameliorates neurodegeneration in the amygdala and improves depression- and anxiety-like behavior in a rat model of combined traumatic brain injury and hemorrhagic shock. Neurochemistry International, 140, 104842. https://doi.org/10.1016/j.neuint.2020.104842
Liao, Y., Guo, Z., Xia, X., Liu, Y., Huang, C., Jiang, L., Wang, X., Liu, J., & Huang, H. (2019). Inhibition of EGFR signaling with Spautin-1 represents a novel therapeutics for prostate cancer. Journal of Experimental & Clinical Cancer Research, 38(1), 157. https://doi.org/10.1186/s13046-019-1165-4
Liu, E. Y., Xu, N., O’Prey, J., Lao, L. Y., Joshi, S., Long, J. S., O’Prey, M., Croft, D. R., Beaumatin, F., Baudot, A. D., Mrschtik, M., Rosenfeldt, M., Zhang, Y., Gillespie, D. A., & Ryan, K. M. (2015). Loss of autophagy causes a synthetic lethal deficiency in DNA repair. Proceedings of the National Academy of Sciences of the United States of America, 112(3), 773–778. https://doi.org/10.1073/pnas.1409563112
Liu, H., Zhao, Z., Wu, T., Zhang, Q., Lu, F., Gu, J., Jiang, T., & Xue, J. (2021). Inhibition of autophagy-dependent pyroptosis attenuates cerebral ischaemia/reperfusion injury. Journal of Cellular and Molecular Medicine, 25(11), 5060–5069. https://doi.org/10.1111/jcmm.16483
Liu, J., Xia, H., Kim, M., Xu, L., Li, Y., Zhang, L., Cai, Y., Norberg, H. V., Zhang, T., Furuya, T., Jin, M., Zhu, Z., Wang, H., Yu, J., Li, Y., Hao, Y., Chio, A., Ke, H., Ma, D., & Yuan, J. (2011). Beclin1 controls the levels of p53 by regulating the deubiquitination activity of USP10 and USP13. Cell, 147(1), 223–234. https://doi.org/10.1016/j.cell.2011.08.037
Luo, C. L., Li, B. X., Li, Q. Q., Chen, X. P., Sun, Y. X., Bao, H. J., Dai, D. K., Shen, Y. W., Xu, H. F., Ni, H., Wan, L., Qin, Z. H., Tao, L. Y., & Zhao, Z. Q. (2011). Autophagy is involved in traumatic brain injury-induced cell death and contributes to functional outcome deficits in mice. Neuroscience, 184, 54–63. https://doi.org/10.1016/j.neuroscience.2011.03.021
Mallya, S., Sutherland, J., Pongracic, S., Mainland, B., & Ornstein, T. J. (2015). The manifestation of anxiety disorders after traumatic brain injury: A review. Journal of Neurotrauma, 32(7), 411–421. https://doi.org/10.1089/neu.2014.3504
McIlwain, D. R., Berger, T., & Mak, T. W. (2013). Caspase functions in cell death and disease. Cold Spring Harbor Perspectives in Biology, 5(4), a008656. https://doi.org/10.1101/cshperspect.a008656
Murthy, S., Kane, G. A., Katchur, N. J., Lara Mejia, P. S., Obiofuma, G., Buschman, T. J., McEwen, B. C., & Gould, E. (2019). Perineuronal nets, inhibitory interneurons, and anxiety-related ventral hippocampal neuronal oscillations are altered by early life adversity. Biological Psychiatry, 85(12), 1011–1020. https://doi.org/10.1016/j.biopsych.2019.02.021
Ning, X., Wang, Y., Jing, M., Sha, M., Lv, M., Gao, P., Zhang, R., Huang, X., Feng, J. M., & Jiang, Z. (2019). Apoptotic caspases suppress Type I interferon production via the cleavage of cGAS, MAVS, and IRF3. Molecular Cell, 74(1), 19-31.e17. https://doi.org/10.1016/j.molcel.2019.02.013
Ohira, K., Takeuchi, R., Iwanaga, T., & Miyakawa, T. (2013). Chronic fluoxetine treatment reduces parvalbumin expression and perineuronal nets in gamma-aminobutyric acidergic interneurons of the frontal cortex in adult mice. Molecular Brain, 6, 43. https://doi.org/10.1186/1756-6606-6-43
Petraglia, A. L., Plog, B. A., Dayawansa, S., Chen, M., Dashnaw, M. L., Czerniecka, K., Walker, C. T., Viterise, T., Hyrien, O., Iliff, J. J., Deane, R., Nedergaard, M., & Huang, J. H. (2014). The spectrum of neurobehavioral sequelae after repetitive mild traumatic brain injury: A novel mouse model of chronic traumatic encephalopathy. Journal of Neurotrauma, 31(13), 1211–1224. https://doi.org/10.1089/neu.2013.3255
Pollack, M. H., Jensen, J. E., Simon, N. M., Kaufman, R. E., & Renshaw, P. F. (2008). High-field MRS study of GABA, glutamate and glutamine in social anxiety disorder: Response to treatment with levetiracetam. Progress in Neuro-Psychopharmacology and Biological Psychiatry, 32(3), 739–743. https://doi.org/10.1016/j.pnpbp.2007.11.023
Pozuelo-Rubio, M. (2011). 14–3-3ζ binds class III phosphatidylinositol-3-kinase and inhibits autophagy. Autophagy, 7(2), 240–242. https://doi.org/10.4161/auto.7.2.14286
Reichelt, A. C., Hare, D. J., Bussey, T. J., & Saksida, L. M. (2019). Perineuronal nets: Plasticity, protection, and therapeutic potential. Trends in Neurosciences, 42(7), 458–470. https://doi.org/10.1016/j.tins.2019.04.003
Ren, D., Fan, J., Puccio, A. M., Okonkwo, D. O., Beers, S. R., & Conley, Y. (2017). Group-based trajectory analysis of emotional symptoms among survivors after severe traumatic brain injury. The Journal of Head Trauma Rehabilitation, 32(6), E29-e37. https://doi.org/10.1097/htr.0000000000000294
Comments (0)