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Targeted insertional mutagenesis libraries for deep domain insertion profiling.
Coyote-Maestas, Willow; Nedrud, David; Okorafor, Steffan; He, Yungui; Schmidt, Daniel.
Affiliation
  • Coyote-Maestas W; Dept. of Biochemistry, Molecular Biology & Biophysics, University of Minnesota, Minneapolis, MN 55455, USA.
  • Nedrud D; Dept. of Biochemistry, Molecular Biology & Biophysics, University of Minnesota, Minneapolis, MN 55455, USA.
  • Okorafor S; Dept. of Neuroscience, University of Minnesota, Minneapolis, MN 55455, USA.
  • He Y; Dept. of Genetics, Cell Biology & Development, University of Minnesota, Minneapolis, MN 55455, USA.
  • Schmidt D; Dept. of Genetics, Cell Biology & Development, University of Minnesota, Minneapolis, MN 55455, USA.
Nucleic Acids Res ; 48(2): e11, 2020 01 24.
Article in En | MEDLINE | ID: mdl-31745561
ABSTRACT
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.
Subject(s)

Full text: 1 Database: MEDLINE Main subject: DNA Transposable Elements / Mutagenesis, Insertional / Evolution, Molecular / Potassium Channels, Inwardly Rectifying Limits: Humans Language: En Journal: Nucleic Acids Res Year: 2020 Type: Article Affiliation country: United States

Full text: 1 Database: MEDLINE Main subject: DNA Transposable Elements / Mutagenesis, Insertional / Evolution, Molecular / Potassium Channels, Inwardly Rectifying Limits: Humans Language: En Journal: Nucleic Acids Res Year: 2020 Type: Article Affiliation country: United States