Dipartimento di Neuroscienze e Tecnologie Biomediche, Università degli Studi di Milano-Bicocca, via Cadore 48, 20052 Monza, Italy.
Neuroscience. 2011 Jan 13;172:12-9. doi: 10.1016/j.neuroscience.2010.10.065. Epub 2010 Oct 31.
The positive effect of adult undifferentiated mesenchymal stem cells (MSCs) on neuronal survival has already been reported, although the mechanisms by which MSCs exert their effect are still a matter of debate. Here we have demonstrated that MSCs are able to prolong the survival of dorsal root ganglion (DRG) neurons mainly by inhibiting some proteolytic enzymes, and in particular the pathway of metalloproteinases (MMPs), a family of proteins that are involved in many neuronal processes, including survival. The inhibition of MMPs was both direct, by acting on MT-MMP1, and indirect, by acting on those proteins that regulate MMPs' activation, such as Timp-1 and Sparc. The importance of the MMPs' down-regulation for neuronal survival was also demonstrated by using N-isobutyl-N-(4-methoxyphenylsulfonyl)-glycyl hydroxamic acid (NNGH), a wide range inhibitor of metalloproteinases, which was able to increase the survival of DRG neurons in a significant manner. The down-regulation of MMPs, obtained both by MSC contact and by chemical inhibition, led to the inactivation of caspase 3, the executor of apoptotic death in DRG neurons cultured alone, while caspase 7 was found to be irrelevant for the apoptotic process. The capacity of MSCs to prevent apoptosis mainly by inactivating the metalloproteinase pathway is an important finding that sheds light on MSCs' mechanism of action, making undifferentiated MSCs a promising tool for the treatment of many different neurodegenerative pathologies.
成体未分化间充质干细胞(MSCs)对神经元存活的积极影响已经得到报道,尽管 MSCs 发挥作用的机制仍存在争议。在这里,我们已经证明 MSCs 能够通过抑制某些蛋白水解酶,特别是金属蛋白酶(MMPs)途径,来延长背根神经节(DRG)神经元的存活,MMPs 是一类参与许多神经元过程的蛋白质,包括存活。MMPs 的抑制是直接的,通过作用于 MT-MMP1,也是间接的,通过作用于调节 MMPs 激活的蛋白质,如 TIMP-1 和 Sparc。使用 N-异丁基-N-(4-甲氧基苯基磺酰基)-甘氨酰羟肟酸(NNGH),一种广泛的金属蛋白酶抑制剂,也证明了 MMPs 的下调对神经元存活的重要性,NNGH 能够显著增加 DRG 神经元的存活。通过 MSC 接触和化学抑制获得的 MMPs 下调导致 caspase 3 的失活,caspase 3 是单独培养的 DRG 神经元凋亡死亡的执行者,而 caspase 7 与凋亡过程无关。MSCs 通过使金属蛋白酶途径失活来预防凋亡的能力是一个重要的发现,它揭示了 MSCs 的作用机制,使未分化的 MSCs 成为治疗许多不同神经退行性疾病的有前途的工具。