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造血细胞分化过程中细胞周期调控基因表达的谱系特异性调控。

Lineage-specific regulation of cell cycle control gene expression during haematopoietic cell differentiation.

作者信息

Furukawa Y, Kikuchi J, Nakamura M, Iwase S, Yamada H, Matsuda M

机构信息

Division of Molecular Haematopoiesis, Centre for Molecular Medicine, and Department of Haematology, Jichi Medical School, Tochigi, Japan.

出版信息

Br J Haematol. 2000 Sep;110(3):663-73. doi: 10.1046/j.1365-2141.2000.02253.x.

Abstract

To maintain the fidelity and integrity of blood formation, the cell cycle is under strict regulation during haematopoietic cell differentiation. To elucidate the molecular mechanisms of cell cycle regulation during haematopoiesis, we examined cell cycle control gene expression during lineage-specific differentiation from CD34+ progenitor cells. Expression of cyclin-dependent kinases (cdks) and cyclins, except cdk4, was generally suppressed in CD34+ cells freshly isolated from the bone marrow of healthy volunteers. Among four major cdk inhibitors, p16 was expressed more highly in CD34+ cells than in CD34-negative bone marrow mononuclear cells, whereas the amounts of p21 and p27 transcripts increased in the CD34- population. The behaviour of cell cycle control genes during haematopoietic differentiation was classified into four patterns: (i) universal upregulation (cdc2, cdk2, cyclin A, cyclin B and p21); (ii) upregulation in specific lineages (cyclin D1, cyclin D3 and p15); (iii) no induction or stable expression (cdk4, cyclin D2, cyclin E and p27); and (iv) universal downregulation (p16). Lineage-specific changes included the sustained elevation of cdc2 and cyclin A during erythroid differentiation, cyclin D1 and p15 induction in myeloid lineage and selective upregulation of cyclin D3 in megakaryocytes. Blocking induction of cyclin D3 resulted in the inhibition of megakaryocytic differentiation. These results suggest that the expression of cell cycle control genes is distinctively regulated in a lineage-dependent manner, reflecting the cell cycle characteristics of each lineage. Some of these genes play an essential role in the process of differentiation itself.

摘要

为维持血细胞生成的保真度和完整性,造血细胞分化过程中细胞周期受到严格调控。为阐明造血过程中细胞周期调控的分子机制,我们检测了CD34⁺祖细胞向特定谱系分化过程中细胞周期调控基因的表达。从健康志愿者骨髓中新鲜分离出的CD34⁺细胞中,细胞周期蛋白依赖性激酶(cdks)和细胞周期蛋白(除cdk4外)的表达通常受到抑制。在四种主要的cdk抑制剂中,p16在CD34⁺细胞中的表达高于CD34阴性的骨髓单个核细胞,而p21和p27转录本的量在CD34⁻群体中增加。造血分化过程中细胞周期调控基因的行为分为四种模式:(i)普遍上调(cdc2、cdk2、细胞周期蛋白A、细胞周期蛋白B和p21);(ii)在特定谱系中上调(细胞周期蛋白D1、细胞周期蛋白D3和p15);(iii)无诱导或稳定表达(cdk4、细胞周期蛋白D2、细胞周期蛋白E和p27);以及(iv)普遍下调(p16)。谱系特异性变化包括红系分化过程中cdc2和细胞周期蛋白A的持续升高、髓系谱系中细胞周期蛋白D1和p15的诱导以及巨核细胞中细胞周期蛋白D3的选择性上调。阻断细胞周期蛋白D3的诱导导致巨核细胞分化受到抑制。这些结果表明,细胞周期调控基因的表达以谱系依赖性方式受到独特调控,反映了每个谱系的细胞周期特征。其中一些基因在分化过程本身中发挥着重要作用。

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