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Engineering a protein scaffold from a PHD finger

机译:从PHD手指工程化蛋白质支架

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The design of proteins with tailored functions remains a relatively elusive goal. Small size, a well-defined structure, and the ability to maintain structural integrity despite multiple mutations are all desirable properties for such designer proteins. Many zinc binding domains fit this description. We determined the structure of a PHD finger from the transcriptional cofactor Mi2beta and investigated the suitability of this domain as a scaffold for presenting selected binding functions. The two flexible loops in the structure were mutated extensively by either substitution or expansion, without affecting the overall fold of the domain. A binding site for the corepressor CtBP2 was also grafted onto the domain, creating a new PHD domain that can specifically bind CtBP2 both in vitro and in the context of a eukaryotic cell nucleus. These results represent a step toward designing new regulatory proteins for modulating aberrant gene expression in vivo. [References: 42]
机译:具有定制功能的蛋白质设计仍然是一个相对难以实现的目标。小尺寸,结构清晰的结构以及尽管发生多次突变仍能保持结构完整性的能力都是此类设计蛋白的理想特性。许多锌结合结构域符合该描述。我们从转录辅因子Mi2beta确定了PHD手指的结构,并研究了该结构域作为展示所选结合功能支架的适用性。结构中的两个柔性环通过替换或扩展被广泛地突变,而不影响域的整体折叠。还将共抑制物CtBP2的结合位点嫁接到该结构域上,产生了一个新的PHD结构域,该结构域可以在体外和在真核细胞核的背景下特异性结合CtBP2。这些结果代表了设计新的调节蛋白以调节体内异常基因表达的一步。 [参考:42]

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