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单核细胞/巨噬细胞分化过程中伴随着从Myc:Max异源复合物向Mad:Max异源复合物的转变。

A switch from Myc:Max to Mad:Max heterocomplexes accompanies monocyte/macrophage differentiation.

作者信息

Ayer D E, Eisenman R N

机构信息

Division of Basic Sciences A2-025, Fred Hutchinson Cancer Research Center, Seattle, Washington 98104.

出版信息

Genes Dev. 1993 Nov;7(11):2110-9. doi: 10.1101/gad.7.11.2110.

Abstract

Mad is a basic-helix-loop-helix-zipper protein that heterodimerizes with Max in vitro. Mad:Max heterodimers recognize the same E-box-related DNA-binding sites as Myc:Max heterodimers. However, in transient transfection assays Myc and Mad influence transcription in opposite ways through interaction with Max; Myc activates while Mad represses transcription. Here, we demonstrate that Mad protein is induced rapidly upon differentiation of cells of the myeloid lineage. The Mad protein is synthesized in human cells as a 35-kD nuclear phosphoprotein with an extremely short half-life (t1/2 = 15-30 min) and can be detected in vivo in a complex with Max. In the undifferentiated U937 monocyte cell line Max was found complexed with Myc but not Mad. However, Mad:Max complexes began to accumulate as early as 2 hr after induction of macrophage differentiation with TPA. By 48 hr following TPA treatment only Mad:Max complexes were detectable. These data show that differentiation is accompanied by a change in the composition of Max heterocomplexes. We speculate that this switch in heterocomplexes results in a change in the transcriptional regulation of Myc:Max target genes required for cell proliferation.

摘要

Mad是一种碱性螺旋-环-螺旋-拉链蛋白,在体外可与Max形成异源二聚体。Mad:Max异源二聚体与Myc:Max异源二聚体识别相同的E-box相关DNA结合位点。然而,在瞬时转染实验中,Myc和Mad通过与Max相互作用以相反的方式影响转录;Myc激活转录而Mad抑制转录。在此,我们证明在髓系细胞分化时Mad蛋白迅速被诱导。Mad蛋白在人类细胞中作为一种35-kD的核磷蛋白合成,半衰期极短(t1/2 = 15 - 30分钟),并且在体内可检测到与Max形成复合物。在未分化的U937单核细胞系中,发现Max与Myc形成复合物,但不与Mad形成复合物。然而,在用佛波酯(TPA)诱导巨噬细胞分化后2小时,Mad:Max复合物就开始积累。在TPA处理48小时后,只能检测到Mad:Max复合物。这些数据表明分化伴随着Max异源复合物组成的变化。我们推测这种异源复合物的转换导致了细胞增殖所需的Myc:Max靶基因转录调控的变化。

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