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Targeted insertional mutagenesis libraries for deep domain insertion profiling

机译:针对深域插入分析的针对性插入诱变图书馆

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摘要

Domain recombination is a key principle in protein evolution and protein engineering, but inserting a donor domain into every position of a target protein is not easily experimentally accessible. Most contemporary domain insertion profiling approaches rely on DNA transposons, which are constrained by sequence bias. Here, we establish Saturated Programmable Insertion Engineering (SPINE), an unbiased, comprehensive, and targeted domain insertion library generation technique using oligo library synthesis and multi-step Golden Gate cloning. Through benchmarking to MuA transposon-mediated library generation on four ion channel genes, we demonstrate that SPINE-generated libraries are enriched for in-frame insertions, have drastically reduced sequence bias as well as near-complete and highly-redundant coverage. Unlike transposon-mediated domain insertion that was severely biased and sparse for some genes, SPINE generated high-quality libraries for all genes tested. Using the Inward Rectifier K+ channel Kir2.1, we validate the practical utility of SPINE by constructing and comparing domain insertion permissibility maps. SPINE is the first technology to enable saturated domain insertion profiling. SPINE could help explore the relationship between domain insertions and protein function, and how this relationship is shaped by evolutionary forces and can be engineered for biomedical applications.
机译:结构域重组是蛋白质演化和蛋白质工程中的一个关键原理,但将供体域插入目标蛋白的每个位置不易进行实验访问。大多数当代域插入分析方法依赖于DNA转座子,其受序列偏压约束。在这里,我们建立了饱和的可编程插入工程(脊柱),使用寡文库综合和多步金门克隆的非偏见,全面和有针对性的域插入库生成技术。通过基准测试在四个离子通道基因上产生的MUA转座子介导的库,我们证明脊柱生成的文库富集用于内框架插入,序列偏差大大降低,以及近乎完全和高度冗余的覆盖。与某些基因严重偏向和稀疏的转座子介导的结构域插入不同,对于所有测试的所有基因产生脊柱产生的高质量文库。使用向内整流器K +通道Kir2.1,我们通过构造和比较域插入允许映射来验证脊柱的实用实用程序。脊柱是第一种能够实现饱和域插入分析的技术。脊椎可以帮助探索域插入和蛋白质功能之间的关系,以及这种关系如何通过进化力塑造,并且可以为生物医学应用设计。

著录项

  • 来源
    《Nucleic Acids Research》 |2020年第2期|共14页
  • 作者单位

    Univ Minnesota Dept Biochem Mol Biol &

    Biophys Minneapolis MN 55455 USA;

    Univ Minnesota Dept Biochem Mol Biol &

    Biophys Minneapolis MN 55455 USA;

    Univ Minnesota Dept Neurosci Minneapolis MN 55455 USA;

    Univ Minnesota Dept Genet Cell Biol &

    Dev Minneapolis MN 55455 USA;

    Univ Minnesota Dept Genet Cell Biol &

    Dev Minneapolis MN 55455 USA;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
  • 关键词

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