Zinc Fingers.

Carla Isernia, Gaetano Malgieri, Luigi Russo, Gianluca D'Abrosca, Ilaria Baglivo, Paolo V Pedone, Roberto Fattorusso
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引用次数: 4

Abstract

Zinc finger (ZF) domains, that represent the majority of the DNA-binding motifs in eukaryotes, are involved in several processes ranging from RNA packaging to transcriptional activation, regulation of apoptosis, protein folding and assembly, and lipid binding. While their amino acid composition varies from one domain to the other, a shared feature is the coordination of a zinc ion, with a structural role, by a different combination of cysteines and histidines. The classical zinc finger domain (also called Cys2His2) that represents the most common class, uses two cysteines and two histidines to coordinate the metal ion, and forms a compact ββα architecture consisting in a β-sheet and an α-helix. GAG-knuckle resembles the classical ZF, treble clef and zinc ribbon are also well represented in the human genome. Zinc fingers are also present in prokaryotes. The first prokaryotic ZF domain found in the transcriptional regulator Ros protein was identified in Agrobacterium tumefaciens. It shows a Cys2His2 metal ion coordination sphere and folds in a domain significantly larger than its eukaryotic counterpart arranged in a βββαα topology. Interestingly, this domain does not strictly require the metal ion coordination to achieve the functional fold. Here, we report what is known on the main classes of eukaryotic and prokarotic ZFs, focusing our attention to the role of the metal ion, the folding mechanism, and the DNA binding. The hypothesis of a horizontal gene transfer from prokaryotes to eukaryotes is also discussed.

锌的手指。
锌指结构域代表了真核生物中大多数dna结合基序,参与了RNA包装、转录激活、细胞凋亡调节、蛋白质折叠和组装以及脂质结合等多个过程。虽然它们的氨基酸组成各不相同,但一个共同的特征是锌离子的协调作用,通过半胱氨酸和组氨酸的不同组合发挥结构作用。典型的锌指结构域(也称为Cys2His2)是最常见的一类,它使用两个半胱氨酸和两个组氨酸来协调金属离子,形成由β-片和α-螺旋组成的致密的β- βα结构域。GAG-knuckle类似于经典的ZF,高音谱号和锌带在人类基因组中也很有代表性。锌指也存在于原核生物中。在农杆菌中首次发现了转录调节因子Ros蛋白的原核ZF结构域。它显示出一个Cys2His2金属离子配位球,其结构域折叠明显大于真核分子的βββαα拓扑结构。有趣的是,这个结构域并不严格要求金属离子配位来实现功能折叠。在这里,我们报道了真核生物和原核生物zf的主要种类,重点介绍了金属离子的作用、折叠机制和DNA结合。我们还讨论了基因从原核生物向真核生物水平转移的假设。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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