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Rapid creation of BAC-based human artificial chromosome vectors by transposition with synthetic alpha-satellite arrays

机译:通过合成α-卫星阵列转座快速创建基于BAC的人类人工染色体载体

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Efficient construction of BAC-based human artificial chromosomes (HACs) requires optimization of each key functional unit as well as development of techniques for the rapid and reliable manipulation of high-molecular weight BAC vectors. Here, we have created synthetic chromosome 17-derived alpha-satellite arrays, based on the 16-monomer repeat length typical of natural D17Z1 arrays, in which the consensus CENP-B box elements are either completely absent (0/16 monomers) or increased in density (16/16 monomers) compared to D17Z1 alpha-satellite (5/16 monomers). Using these vectors, we show that the presence of CENP-B box elements is a requirement for efficient de novo centromere formation and that increasing the density of CENP-B box elements may enhance the efficiency of de novo centromere formation. Furthermore, we have developed a novel, high-throughput methodology that permits the rapid conversion of any genomic BAC target into a HAC vector by transposon-mediated modification with synthetic alpha-satellite arrays and other key functional units. Taken together, these approaches offer the potential to significantly advance the utility of BAC-based HACs for functional annotation of the genome and for applications in gene transfer.
机译:基于BAC的人类人工染色体(HAC)的有效构建需要优化每个关键功能单元,并需要开发用于快速可靠操作高分子量BAC载体的技术。在这里,我们基于天然D17Z1阵列的16个单体重复序列长度,创建了人工合成的17号染色​​体衍生的α卫星阵列,其中共有CENP-B框元素完全不存在(0/16单体)或增加了密度(16/16单体)与D17Z1α卫星(5/16单体)相比。使用这些载体,我们表明CENP-B框元素的存在是有效的从头着丝粒形成的要求,而增加CENP-B框元素的密度可以增强从头着丝粒形成的效率。此外,我们已经开发出一种新颖的高通量方法,该方法可以通过转座子介导的合成α卫星阵列和其他关键功能单元的修饰,将任何基因组BAC靶标快速转化为HAC载体。综上所述,这些方法提供了极大地提高基于BAC的HAC在基因组功能注释和基因转移中应用的潜力。

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