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Tim-2 is the receptor for H-ferritin on oligodendrocytes.

机译:Tim-2是少突胶质细胞上H-铁蛋白的受体。

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Oligodendrocytes stain more strongly for iron than any other cell in the CNS, and they require iron for the production of myelin. For most cell types transferrin is the major iron delivery protein, yet neither transferrin receptor protein nor mRNA are detectable in mature oligodendrocytes. Thus an alternative iron delivery mechanism must exist. Given the significant long term consequences of developmental iron deficiency and the iron requirements for normal myelination, identification of the iron delivery mechanism for oligodendrocytes is important. Previously we have reported that oligodendrocytes bind H-ferritin and that H-ferritin binds to white matter tracts in vivo. Recently, T cell immunoglobulin and mucin domain-containing protein-2 (Tim-2) was shown to bind and internalize H-ferritin. In the present study we show that Tim-2 is expressed on oligodendrocytes both in vivo and in vitro. Further, the onset of saturable H-ferritin binding in CG4 oligodendrocyte cell line is accompanied by Tim-2 expression. Application of a blocking antibody to the extracellular domain of Tim-2 significantly reduces H-ferritin binding to the differentiated CG4 cells and primary oligodendrocytes. Tim-2 expression on CG4 cells is responsive to iron; decreasing with iron loading and increasing with iron chelation. Taken together, these data provide compelling evidence that Tim-2 is the H-ferritin receptor on oligodendrocytes suggesting it is the primary mechanism for iron acquisition by these cells.
机译:少突胶质细胞对铁的染色比中枢神经系统中的任何其他细胞都要强,并且它们需要铁才能产生髓磷脂。对于大多数细胞类型,转铁蛋白是主要的铁传递蛋白,但在成熟的少突胶质细胞中都检测不到转铁蛋白受体蛋白和mRNA。因此,必须存在替代的铁输送机制。鉴于发育性铁缺乏症的严重长期后果和正常髓鞘形成的铁需求,确定少突胶质细胞铁传递机制非常重要。以前我们已经报道过少突胶质细胞结合H-铁蛋白,而H-铁蛋白在体内结合白质。最近,显示T细胞免疫球蛋白和含粘蛋白结构域的蛋白2(Tim-2)结合并内化H-铁蛋白。在本研究中,我们显示了Tim-2在体内和体外均在少突胶质细胞上表达。此外,在CG4少突胶质细胞细胞系中饱和H-铁蛋白结合的开始伴随着Tim-2表达。将封闭性抗体应用于Tim-2的胞外域会显着降低H-铁蛋白与分化的CG4细胞和原代少突胶质细胞的结合。 CG4细胞上Tim-2的表达对铁有反应。随着铁负载的增加而减少,随着铁螯合的增加而增加。综上所述,这些数据提供了令人信服的证据,表明Tim-2是少突胶质细胞上的H-铁蛋白受体,表明它是这些细胞获取铁的主要机制。

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