Massa Paul T, Wu Charlene, Fecenko-Tacka Karen
Department of Neurology, Neuroscience Program, SUNY Upstate Medical University, Syracuse, New York 13066, USA.
J Neurosci Res. 2004 Jul 1;77(1):15-25. doi: 10.1002/jnr.20155.
We have shown previously that myelin-forming oligodendrocytes express the protein tyrosine phosphatase SHP-1 and that myelin formation was decreased in SHP-1-deficient motheaten mice compared to that in normal littermates. These studies suggested a potential importance for SHP-1 in oligodendrocyte and myelin development. To address further this possibility, we analyzed myelin formation by microscopy and myelin basic protein (MBP) gene expression in motheaten mice at ages when myelination occurs in the developing central nervous system (CNS). Furthermore, we correlate these findings with MBP gene expression in oligodendrocytes grown in vitro. We have found that CNS myelination was significantly reduced in SHP-1-deficient mice relative to their normal littermates at multiple times during the active period of myelination. Under electron microscopy, greater numbers of axons in spinal cords of motheaten mice were either unmyelinated or had thinner myelin sheathes compared to those in matched areas of normal littermates. Accordingly, MBP protein and mRNA levels were reduced in SHP-1-deficient mice compared to that in the CNS of normal littermates. In vitro, O1(+) oligodendrocytes from motheaten mice expressed much less MBP than O1(+) oligodendrocytes of normal littermates indicating an alteration in oligodendrocyte differentiation. The latter correlated with reduced MBP mRNA relative to cerebroside galactosyl transferase (CGT) gene mRNA in SHP-1-deficient oligodendrocytes in purified cultures. We propose that SHP-1 is a critical regulator of developmental signals leading to terminal differentiation and myelin sheath formation by oligodendrocytes.
我们之前已经表明,形成髓鞘的少突胶质细胞表达蛋白酪氨酸磷酸酶SHP-1,并且与正常同窝小鼠相比,SHP-1缺陷型的肌无力小鼠的髓鞘形成减少。这些研究表明SHP-1在少突胶质细胞和髓鞘发育中具有潜在的重要性。为了进一步探讨这种可能性,我们通过显微镜分析了肌无力小鼠在发育中的中枢神经系统(CNS)发生髓鞘形成的年龄阶段的髓鞘形成情况以及髓鞘碱性蛋白(MBP)基因表达。此外,我们将这些发现与体外培养的少突胶质细胞中的MBP基因表达相关联。我们发现,在髓鞘形成活跃期的多个时间点,与正常同窝小鼠相比,SHP-1缺陷型小鼠的CNS髓鞘形成显著减少。在电子显微镜下,与正常同窝小鼠相应区域相比,肌无力小鼠脊髓中更多的轴突未被髓鞘化或具有更薄的髓鞘。因此,与正常同窝小鼠的CNS相比,SHP-1缺陷型小鼠中的MBP蛋白和mRNA水平降低。在体外,来自肌无力小鼠的O1(+)少突胶质细胞表达的MBP比正常同窝小鼠的O1(+)少突胶质细胞少得多,这表明少突胶质细胞分化发生了改变。后者与纯化培养物中SHP-1缺陷型少突胶质细胞中相对于脑苷脂半乳糖基转移酶(CGT)基因mRNA的MBP mRNA减少相关。我们提出,SHP-1是导致少突胶质细胞终末分化和髓鞘形成的发育信号的关键调节因子。