Genetic and molecular characterization of murine GATA-1 in Aspergillus defines a critical role for the N-terminal finger

Mark Caddick, David Peters, Paul Hooley, Andrew Nayler
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引用次数: 6

Abstract

We have utilized Aspergillus nidulans as a model system for the characterization of the major vertebrate transcription factor GATA-1. This has been achieved both by analysing the function of murine GATA-1 directly and by using direct gene replacement to introduce chimaeric areA::GATA-1 derivatives at the areA locus, which encodes a GATA factor involved in regulating nitrogen metabolism in A. nidulans. Although GATA-1 shows only limited function when expressed in A. nidulans, the C-terminal GATA DNA-binding domain can replace the native GATA domain of AREA and retain near wild-type function. Surprisingly, inclusion of the N-terminal DNA-binding domain of GATA-1 has a major role in determining the function of areA::GATA constructs in vivo, leading to a general loss of activation. This negative function is partially dominant and is dependent on both the fidelity of the zinc-chelating structure and a second factor encoded by A. nidulans. The presence of two GATA domains also disrupts modulation of AREA activity. The ability of duplicate GATA domains to disrupt normal signal transduction is not dependent on the relative position of the domains or on the fidelity of the zinc-chelating structure. This demonstrates the utility of nitrogen metabolism’s regulation in A. nidulans as a model system for the molecular and genetic characterization of heterologous GATA factors while also providing insights into native Aspergillus regulatory components.

小鼠GATA-1在曲霉菌中的遗传和分子特征确定了n端手指的关键作用
我们利用细粒曲霉作为主要脊椎动物转录因子GATA-1表征的模型系统。这是通过直接分析小鼠GATA-1的功能和通过直接基因替换在areA位点引入嵌合的areA::GATA-1衍生物来实现的,areA位点编码一个参与调节棉兰氮代谢的GATA因子。虽然GATA-1在麻豆中表达时功能有限,但c端GATA dna结合域可以取代AREA的天然GATA结构域,保持接近野生型的功能。令人惊讶的是,GATA-1的n端dna结合域的包含在体内决定areA::GATA构建体的功能中起着重要作用,导致其普遍失去激活。这种负功能部分占主导地位,并依赖于锌螯合结构的保真度和由白莲编码的第二个因子。两个GATA结构域的存在也扰乱了AREA活性的调节。重复GATA结构域破坏正常信号转导的能力不依赖于结构域的相对位置或锌螯合结构的保真度。这证明了在a . nidulans中氮代谢调节作为异种GATA因子的分子和遗传特征的模型系统的效用,同时也提供了对原生曲霉调节成分的见解。
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