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在由杯状病毒诱导脱髓鞘后,缺乏多涎酸合成酶 St8siaIV 的小鼠中的髓鞘再生得到加速。

Remyelination after cuprizone induced demyelination is accelerated in mice deficient in the polysialic acid synthesizing enzyme St8siaIV.

机构信息

Department of Neurology, Hannover Medical School, Carl-Neuberg-Street-1, 30625 Hanover, Germany.

出版信息

Neuroscience. 2010 Nov 24;171(1):235-44. doi: 10.1016/j.neuroscience.2010.08.070. Epub 2010 Sep 15.

Abstract

Polysialic acid (PSA) is a carbohydrate polymer added post-translationally on the neural cell adhesion molecule (NCAM) affecting its adhesion properties. It has been suggested that the presence of PSA in demyelinated lesions in multiple sclerosis could prevent axon-glia interactions inhibiting spontaneous remyelination. The enzyme St8siaIV is one of the two polysialyltransferases responsible for PSA synthesis, and it is predominantly active during adult life. Here we treated 8-10-weeks old St8siaIV deficient and wild-type mice for 5 weeks with cuprizone, which is a reliable model for de- and remyelination in the corpus callosum and cortex. Developmental myelination of the St8siaIV knock-out mice was not disturbed and adult mice showed normal myelin protein expression. Demyelination did not differ between transgenic and wild-type mice but early myelin protein re-expression and thus remyelination were accelerated in St8siaIV knock-out mice during the first week after withdrawal of the toxin. This was mainly due to enhanced oligodendrocyte precursor cells (OPC) differentiation and to a lesser extent to OPC recruitment. These data are proof of principle that PSA expression interferes at least to some extent with remyelination in vivo.

摘要

聚唾液酸(PSA)是一种翻译后添加到神经细胞黏附分子(NCAM)上的碳水化合物聚合物,影响其黏附特性。有人提出,多发性硬化症脱髓鞘病变中 PSA 的存在可能阻止轴突-胶质细胞相互作用,从而抑制自发的髓鞘再生。St8siaIV 酶是负责 PSA 合成的两种多唾液酸转移酶之一,在成年期主要活跃。在这里,我们用杯状蛋白处理 8-10 周龄的 St8siaIV 缺陷型和野生型小鼠 5 周,杯状蛋白是胼胝体和皮质去髓鞘和再髓鞘的可靠模型。St8siaIV 敲除小鼠的发育性髓鞘形成没有受到干扰,成年小鼠表现出正常的髓鞘蛋白表达。脱髓鞘在转基因和野生型小鼠之间没有差异,但在毒素撤去后的第一周,St8siaIV 敲除小鼠的早期髓鞘蛋白再表达,从而加速了髓鞘再生。这主要是由于少突胶质细胞前体细胞(OPC)分化增强,在较小程度上是由于 OPC 募集增强。这些数据证明了 PSA 表达至少在某种程度上干扰了体内的髓鞘再生。

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