Oligodendroglia Are Particularly Vulnerable to Oxidative Damage After Neurotrauma In Vivo.

Journal of Experimental Neuroscience Pub Date : 2018-11-14 eCollection Date: 2018-01-01 DOI:10.1177/1179069518810004
Marcus Giacci, Melinda Fitzgerald
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引用次数: 72

Abstract

In the paper "Oligodendroglia are particularly vulnerable to oxidative damage after neurotrauma in vivo," we determined the extent of oxidative damage to specific cellular subpopulations and structures within regions vulnerable to secondary degeneration and assessed the effect this had on oligodendroglial function. Comparative assessment of oxidative damage demonstrated selective vulnerability of oligodendroglia, specifically oligodendrocyte progenitor cells (OPCs) to DNA oxidation in vivo. Immunohistochemical fate mapping along the oligodendroglial lineage showed a transient susceptibility of these cells to DNA oxidation, protein nitration, and lipid peroxidation, with mature oligodendrocytes derived immediately after injury more vulnerable to DNA oxidation than their counterparts existing at the time of injury or later derived. In situ hybridization demonstrated a reduction in myelin regulatory factor (MyRF) messenger RNA (mRNA) fluorescence in newly derived mature oligodendrocytes, suggesting a compromise in the production and maintenance of the myelin sheath in these cells. The data imply a deficit in the normal differentiation of OPCs to myelinating oligodendrocytes, associated with a transient increase in oxidative damage, which may contribute to the dysmyelinating phenotype seen at chronic time points after injury. Identifying and understanding the sources of this oxidative damage is integral for the development of therapeutic interventions for neurotrauma.

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体内神经损伤后少突胶质细胞特别容易受到氧化损伤。
在“体内神经损伤后少突胶质细胞特别容易受到氧化损伤”这篇论文中,我们确定了氧化损伤对易继发性变性区域内特定细胞亚群和结构的程度,并评估了这对少突胶质细胞功能的影响。氧化损伤的比较评估表明,体内少突胶质细胞,特别是少突胶质细胞祖细胞(OPCs)对DNA氧化的选择性脆弱性。沿着少突胶质谱系的免疫组织化学命运图谱显示,这些细胞对DNA氧化、蛋白质硝化和脂质过氧化具有短暂的易感性,损伤后立即衍生的成熟少突胶质细胞比损伤时存在或后来衍生的成熟少突胶质细胞更容易受到DNA氧化的影响。原位杂交显示,在新衍生的成熟少突胶质细胞中,髓鞘调节因子(MyRF)信使RNA (mRNA)荧光减少,表明这些细胞中髓鞘的产生和维持存在妥协。这些数据表明,OPCs向髓鞘化少突胶质细胞的正常分化存在缺陷,这与氧化损伤的短暂增加有关,这可能导致损伤后慢性时间点出现髓鞘化异常表型。识别和理解这种氧化损伤的来源对于神经创伤治疗干预的发展是不可或缺的。
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