D'Alo' Francesco, Johansen Lisa M, Nelson Erik A, Radomska Hanna S, Evans Erica K, Zhang Pu, Nerlov Claus, Tenen Daniel G
Hematology/Oncology Division, Harvard Institutes of Medicine, Boston, MA 02115, USA.
Blood. 2003 Nov 1;102(9):3163-71. doi: 10.1182/blood-2003-02-0479. Epub 2003 Jul 17.
The transcription factor C/EBP alpha (CCAAT/enhancer binding protein alpha) is critical for granulopoiesis. Gene disruption in mice blocks early granulocyte differentiation and disruption of C/EBP alpha function has been implicated in human acute myeloid leukemia (AML), but no systematic structure-function analysis has been undertaken to identify the mechanisms involved in C/EBP alpha-mediated granulocyte differentiation. Here we demonstrate that loss of either of 2 key regions results in disruption of C/EBP alpha granulocytic development: the amino terminus and specific residues residing on the non-DNA binding face of the basic region. Mutation of either results in loss of C/EBP alpha inhibition of E2F and down-regulation of c-Myc, but only mutation of the basic region results in loss of physical interaction with E2F. In contrast, while the amino terminal mutant retains the ability to interact with E2F, this mutant fails to bind a C/EBP alpha site efficiently, fails to activate C/EBP alpha target genes, and is also defective in inhibition of E2F activity. These results further emphasize the importance of inhibition of proliferative pathways in granulopoiesis and demonstrate that several regions of the C/EBP alpha protein are involved in this mechanism.
转录因子C/EBPα(CCAAT/增强子结合蛋白α)对粒细胞生成至关重要。小鼠中的基因破坏会阻断早期粒细胞分化,并且C/EBPα功能的破坏与人类急性髓系白血病(AML)有关,但尚未进行系统的结构-功能分析来确定参与C/EBPα介导的粒细胞分化的机制。在此我们证明,两个关键区域中任何一个的缺失都会导致C/EBPα粒细胞发育的破坏:氨基末端以及位于碱性区域非DNA结合面上的特定残基。其中任何一个的突变都会导致C/EBPα对E2F的抑制作用丧失以及c-Myc的下调,但只有碱性区域的突变会导致与E2F的物理相互作用丧失。相比之下,虽然氨基末端突变体保留了与E2F相互作用的能力,但该突变体无法有效结合C/EBPα位点,无法激活C/EBPα靶基因,并且在抑制E2F活性方面也存在缺陷。这些结果进一步强调了抑制增殖途径在粒细胞生成中的重要性,并证明C/EBPα蛋白的几个区域参与了这一机制。