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T细胞与兴奋毒性:HIV-1及其他神经退行性疾病

T-Cells and excitotoxicity: HIV-1 and other neurodegenerative disorders.

作者信息

Mukhtar Muhammad, Acheampong Edward, Parveen Zahida, Pomerantz Roger J

机构信息

The Jefferson Institute for Research in Human Virology and Biodefense Jefferson Medical College, Thomas Jefferson University, Philadelphia, Pennsylvania 19107, USA.

出版信息

Neuromolecular Med. 2005;7(3):265-73. doi: 10.1385/NMM:7:3:265.

Abstract

Until recently the central nervous system (CNS) was considered an immune-privileged site, however, technological and immunological advances have resulted in the CNS being reclassified as an "immune-specialized site." The immune cells, particularly T-cells, continuously patrol the brain and are involved in neuroimmune responses. As such, any changes in the brain microenvironment could affect the physiological functioning of T-cells. Particularly, neurotransmission- associated abnormalities, such as excitotoxicity associated with hypersecretion of glutamate, could severely affect the neuroimmune function of T-cells. Excitotoxicity is involved in the pathogenesis of a number of neurodegenerative disorders. The specific excitotoxicity triggered by the excitatory amino acid neurotransmitter, glutamate, is considered a key mechanism involved in neuronal death. The inability of brain immune cells to overcome these aberrant changes is an active area of investigation. In the systemic circulation, glutamate is inversely related to the number of CD4+ T-cells; however, the effects of elevated glutamate and glutamate-induced exicitotoxicity on cells homing in the brain are critical for understanding neuropathogenesis of neurodegenerative disorders.

摘要

直到最近,中枢神经系统(CNS)还被认为是一个免疫豁免部位,然而,技术和免疫学的进步已导致中枢神经系统被重新归类为“免疫特化部位”。免疫细胞,尤其是T细胞,持续在大脑中巡逻并参与神经免疫反应。因此,大脑微环境中的任何变化都可能影响T细胞的生理功能。特别是,与神经传递相关的异常,如与谷氨酸分泌过多相关的兴奋性毒性,可能会严重影响T细胞的神经免疫功能。兴奋性毒性参与了多种神经退行性疾病的发病机制。由兴奋性氨基酸神经递质谷氨酸引发的特定兴奋性毒性被认为是神经元死亡的关键机制。大脑免疫细胞无法克服这些异常变化是一个活跃的研究领域。在体循环中,谷氨酸与CD4+T细胞的数量呈负相关;然而,谷氨酸水平升高和谷氨酸诱导的兴奋性毒性对归巢于大脑的细胞的影响对于理解神经退行性疾病的神经发病机制至关重要。

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