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In previous studies, we have developed a technology for the rapid construction of novel DNA-binding proteins with the potential to recognize any unique site in a given genome. This technology relies on the modular assembly of modified zinc finger DNA-binding domains, each of which recognizes a three bp subsite of DNA. A complete set of 64 domains would provide comprehensive recognition of any desired DNA sequence, and new proteins could be assembled by any laboratory in a matter of hours. However, a critical parameter for this approach is the extent to which each domain functions as an independent, modular unit, without influence or dependence on its neighboring domains. We therefore examined the detailed binding behavior of several modularly assembled polydactyl zinc finger proteins. We first demonstrated that 80 modularly assembled 3-finger proteins can recognize their DNA target with very high specificity using a multitarget ELISA-based specificity assay. A more detailed analysis of DNA binding specificity for eight 3-finger proteins and two 6-finger proteins was performed using a target site selection assay. Results showed that the specificity of these proteins was as good or better than that of zinc finger proteins constructed using methods that allow for interdependency. In some cases, near perfect specificity was achieved. Complications due to target site overlap were found to be restricted to only one particular amino acid interaction (involving an aspartate in position 2 of the alpha-helix) that occurs in a minority of cases. As this is the first report of target site selection for designed, well characterized 6-finger proteins, unique insights are discussed concerning the relationship of protein length and specificity. These results have important implications for the design of proteins that can recognize extended DNA sequences, as well as provide insights into the general rules of recognition for naturally occurring zinc finger proteins.  相似文献   

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一种特异识别SV40启动子的人工转录因子的构建   总被引:6,自引:3,他引:3  
转录因子是真核表达调控中非常重要的一类反式作用因子,通常由DNA结合域与效应域两部分组成,而锌指结构是DNA结合域的常见组成单元。人工转录因子就是基于转录因子的这种结构特点,人为地选择针对特定序列的DNA结合域与具有特定作用的效应域组合而成。利用噬菌体展示技术,筛选到与SV40启动子上9bp序列特异结合的锌指结构,再连接KOX1的KRAB域构建了一种人工转录因子。转染实验表明它对SV40下游的报告基因的表达有很显著的抑制作用。  相似文献   

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真核生物中锌指蛋白的结构与功能   总被引:3,自引:0,他引:3  
真核生物中的许多蛋白质分子包含锌指结构区,这类蛋白称为锌指蛋白.锌指蛋白因其包含特殊的指状结构,在对DNA、蛋白质和RNA的识别和结合中起重要作用.许多锌指蛋白的锌指结构域包含能与DNA特异结合的区域,并与某些效应结构域(如KRAB、SCAN、BTB/POZ、SNAG、SANT和PLAG等)相连,这类锌指蛋白常作为转录因子起作用,可调控靶基因的转录.一些锌指蛋白包含蛋白质识别结构域(如LIM锌指、MYND锌指、PHD锌指和RING锌指等),它们能够特异地介导蛋白质之间的相互作用,因此被称作蛋白适配器.此外,某些锌指蛋白还可以结合RNA,起转录后调控作用.本文就锌指蛋白与DNA、RNA以及蛋白质分子间的相互作用作一综述.  相似文献   

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C2H2锌指是真核细胞中最常见的DNA结合模体。由于C2H2锌指域靶位点特异性与结构和功能的模块性构成,使得C2H2锌指域成为构建特定的DNA结合蛋白的常用骨架。保持C2H2锌指的基本骨架不变,替换锌指特定位点的氨基酸残基,并融合表达其他功能域就可以得到具有靶向性的人造锌指蛋白(ZFP)。ZFP可以介导靶基因的转录调控,抑制或激活特定基因的表达与配体依赖的靶基因激活或抑制;对DNA进行修饰,如人造限制性内切酶,重组酶,整合酶;抗病毒感染等。因此,人造锌指蛋白应用前景广阔,研究价值显著,是未来人类基因治疗的革命性的工具。  相似文献   

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