Ueno Masaki, Katayama Kei-ichi, Yamauchi Hirofumi, Nakayama Hiroyuki, Doi Kunio
Department of Veterinary Pathology, Graduate School of Agricultural and Life Sciences, The University of Tokyo, 1-1-1 Yayoi, Bunkyo-ku, Tokyo 113-8657, Japan.
Brain Res. 2006 May 9;1088(1):57-67. doi: 10.1016/j.brainres.2006.03.042. Epub 2006 May 2.
In the developing brain, neural progenitor cells in the ventricular zone (VZ) show a typical migration pattern-interkinetic nuclear migration, in which nuclear position within the VZ is correlated with the cell cycle. However, the mechanisms underlying this regulation remain unclear. To clarify whether the cell cycle progression controls nuclear migration of neural progenitor cells, we determined whether chemically induced cell cycle arrest affected nuclear migration patterns in the VZ. Administration of 5-azacytidine (5AzC) or cyclophosphamide (CP) to pregnant mice induced cell cycle arrest in the fetal neural progenitor cells of the telencephalon: 5AzC induced G2/M-phase arrest, and CP induced S-phase arrest. We used 5-bromo-2'-deoxyuridine (BrdU) labeling to determine the position of the cell in the cell cycle and the nuclei within the VZ at the same time. Cells arrested in G2/M-phase stopped migrating in the inner area of the VZ. Cells arrested in S-phase stopped migrating in the outer area. These results indicate that nuclear position within the VZ was correlated with cell cycle phase, even when the cell cycle was disrupted, and that the nuclei of neural progenitor cells can migrate only when their cell cycle is going. Our results suggest that cell cycle regulators might control the machinery of migration through a common regulatory mechanism.
在发育中的大脑中,脑室区(VZ)的神经祖细胞呈现出一种典型的迁移模式——动核迁移,其中VZ内的核位置与细胞周期相关。然而,这种调控的潜在机制仍不清楚。为了阐明细胞周期进程是否控制神经祖细胞的核迁移,我们确定化学诱导的细胞周期停滞是否会影响VZ中的核迁移模式。给怀孕小鼠注射5-氮杂胞苷(5AzC)或环磷酰胺(CP)可诱导端脑胎儿神经祖细胞的细胞周期停滞:5AzC诱导G2/M期停滞,CP诱导S期停滞。我们使用5-溴-2'-脱氧尿苷(BrdU)标记同时确定细胞在细胞周期中的位置以及VZ内的细胞核位置。停滞在G2/M期的细胞在VZ的内部区域停止迁移。停滞在S期的细胞在外部区域停止迁移。这些结果表明,即使细胞周期被破坏,VZ内的核位置仍与细胞周期阶段相关,并且神经祖细胞的核只有在其细胞周期进行时才能迁移。我们的结果表明,细胞周期调节因子可能通过一种共同的调节机制控制迁移机制。