Tanaka T, Kurokawa M, Ueki K, Tanaka K, Imai Y, Mitani K, Okazaki K, Sagata N, Yazaki Y, Shibata Y, Kadowaki T, Hirai H
Third Department of Internal Medicine, University of Tokyo, Bunkyo-ku, Japan.
Mol Cell Biol. 1996 Jul;16(7):3967-79. doi: 10.1128/MCB.16.7.3967.
AML1 (also called PEBP2alphaB, CBFA2, or CBFalpha2) is one of the most frequently disrupted genes in chromosome abnormalities seen in human leukemias. It has been reported that AML1 plays several pivotal roles in myeloid hematopoietic differentiation and other biological phenomena, probably through the transcriptional regulation of various relevant genes. Here, we investigated the mechanism of regulation of AML1 functions through signal transduction pathways. The results showed that AML1 is phosphorylated in vivo on two serine residues within the proline-, serine-, and threonine-rich region, with dependence on the activation of extracellular signal-regulated kinase (ERK) and with interleukin-3 stimulation in a hematopoietic cell line. These in vivo phosphorylation sites of AML1 were phosphorylated directly in vitro by ERK. Although differences between wild-type AML1 and phosphorylation site mutants in DNA-binding affinity were not observed, we have shown that ERK-dependent phosphorylation potentiates the transactivation ability of AML1. Furthermore the phosphorylation site mutations reduced the transforming capacity of AML1 in fibroblast cells. These data indicate that AML1 functions are potentially regulated by ERK, which is activated by cytokine and growth factor stimuli. This study provides some important clues for clarifying unidentified facets of the regulatory mechanism of AML1 function.
AML1(也称为PEBP2αB、CBFA2或CBFα2)是人类白血病中染色体异常时最常被破坏的基因之一。据报道,AML1可能通过对各种相关基因的转录调控,在髓系造血分化和其他生物学现象中发挥多种关键作用。在此,我们研究了通过信号转导通路调控AML1功能的机制。结果表明,在造血细胞系中,AML1在富含脯氨酸、丝氨酸和苏氨酸区域内的两个丝氨酸残基上在体内被磷酸化,这依赖于细胞外信号调节激酶(ERK)的激活以及白细胞介素-3的刺激。AML1的这些体内磷酸化位点在体外被ERK直接磷酸化。虽然未观察到野生型AML1与磷酸化位点突变体在DNA结合亲和力上的差异,但我们已表明ERK依赖性磷酸化增强了AML1的反式激活能力。此外,磷酸化位点突变降低了AML1在成纤维细胞中的转化能力。这些数据表明,AML1的功能可能受ERK调控,而ERK由细胞因子和生长因子刺激激活。本研究为阐明AML1功能调控机制中尚未明确的方面提供了一些重要线索。