趋化因子受体CXCR2在体内的神经胶质细胞上受到不同的调节,但在铜离子螯合剂诱导的脱髓鞘后成功的髓鞘再生过程中并非必需。
The chemokine receptor CXCR2 is differentially regulated on glial cells in vivo but is not required for successful remyelination after cuprizone-induced demyelination.
作者信息
Lindner Maren, Trebst Corinna, Heine Sandra, Skripuletz Thomas, Koutsoudaki Paraskevi N, Stangel Martin
机构信息
Department of Neurology, Medical School Hannover, Hannover, Germany.
出版信息
Glia. 2008 Aug 1;56(10):1104-13. doi: 10.1002/glia.20682.
Unravelling the factors that can positively influence remyelination is one of the major challenges in multiple sclerosis research. Expression of the chemokine receptor CXCR2 on oligodendrocytes both in vitro and in MS lesions has suggested a possible role for CXCR2 in the recruitment of oligodendrocyte precursor cells (OPC). To investigate the function of CXCR2 during remyelination in vivo, we studied this receptor in cuprizone-induced demyelination and subsequent remyelination. We found that CXCR2 is constitutively expressed on OPC, whereas on macrophages/microglia CXCR2 is upregulated upon activation during demyelination. Hence, the expression of CXCR2 is differentially regulated in oligodendrocytes and macrophages/microglia. Furthermore, we subjected CXCR2-/- mice to the cuprizone model demonstrating that remyelination was not altered in comparison to wildtype controls. In addition, the number of OPC and the amount of microglial accumulation were similar in both CXCR2-/- and wildtype animals during the whole demyelination and remyelination process. These results suggest that despite expression on OPC and microglia CXCR2 plays only a minor role during remyelination.
揭示能够对髓鞘再生产生积极影响的因素是多发性硬化症研究中的主要挑战之一。趋化因子受体CXCR2在体外培养的少突胶质细胞以及多发性硬化症病灶中的表达表明,CXCR2在少突胶质前体细胞(OPC)的募集中可能发挥作用。为了研究体内髓鞘再生过程中CXCR2的功能,我们在铜螯合剂诱导的脱髓鞘及随后的髓鞘再生过程中对该受体进行了研究。我们发现,CXCR2在OPC上持续表达,而在巨噬细胞/小胶质细胞上,CXCR2在脱髓鞘过程中激活后上调。因此,CXCR2在少突胶质细胞和巨噬细胞/小胶质细胞中的表达受到不同的调控。此外,我们将CXCR2基因敲除小鼠用于铜螯合剂模型,结果表明与野生型对照相比,髓鞘再生没有改变。另外,在整个脱髓鞘和髓鞘再生过程中,CXCR2基因敲除小鼠和野生型动物的OPC数量以及小胶质细胞聚集量相似。这些结果表明,尽管CXCR2在OPC和小胶质细胞上表达,但在髓鞘再生过程中仅起次要作用。