Hurlin P J, Steingrìmsson E, Copeland N G, Jenkins N A, Eisenman R N
Division of Basic Sciences, Fred Hutchinson Cancer Research Center, 1100 Fairview Avenue N., Seattle, WA 98109-1024, USA.
EMBO J. 1999 Dec 15;18(24):7019-28. doi: 10.1093/emboj/18.24.7019.
The basic-helix-loop-helix-leucine zipper (bHLHZip) proteins Myc, Mad and Mnt are part of a transcription activation/repression system involved in the regulation of cell proliferation. The function of these proteins as transcription factors is mediated by heterodimerization with the small bHLHZip protein Max, which is required for their specific DNA binding to E-box sequences. We have identified a novel Max-interacting protein, Mga, which contains a Myc-like bHLHZip motif, but otherwise shows no relationship with Myc or other Max-interacting proteins. Like Myc, Mad and Mnt proteins, Mga requires heterodimerization with Max for binding to the preferred Myc-Max-binding site CACGTG. In addition to the bHLHZip domain, Mga contains a second DNA-binding domain: the T-box or T-domain. The T-domain is a highly conserved DNA-binding motif originally defined in Brachyury and characteristic of the Tbx family of transcription factors. Mga binds the preferred Brachyury-binding sequence and represses transcription of reporter genes containing promoter-proximal Brachyury-binding sites. Surprisingly, Mga is converted to a transcription activator of both Myc-Max and Brachyury site-containing reporters in a Max-dependent manner. Our results suggest that Mga functions as a dual-specificity transcription factor that regulates the expression of both Max-network and T-box family target genes.
碱性螺旋-环-螺旋-亮氨酸拉链(bHLHZip)蛋白Myc、Mad和Mnt是参与细胞增殖调控的转录激活/抑制系统的一部分。这些蛋白作为转录因子的功能是通过与小bHLHZip蛋白Max异源二聚化来介导的,Max是它们特异性结合E-box序列所必需的。我们鉴定出一种新的与Max相互作用的蛋白Mga,它含有一个类似Myc的bHLHZip基序,但在其他方面与Myc或其他与Max相互作用的蛋白没有关系。与Myc、Mad和Mnt蛋白一样,Mga需要与Max异源二聚化才能结合到首选的Myc-Max结合位点CACGTG。除了bHLHZip结构域外,Mga还包含第二个DNA结合结构域:T-box或T结构域。T结构域是一种高度保守的DNA结合基序,最初在Brachyury中定义,是Tbx转录因子家族的特征。Mga结合首选的Brachyury结合序列并抑制含有启动子近端Brachyury结合位点的报告基因的转录。令人惊讶的是,Mga以Max依赖的方式转化为Myc-Max和含Brachyury位点的报告基因的转录激活剂。我们的结果表明,Mga作为一种双特异性转录因子,调节Max网络和T-box家族靶基因的表达。