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Assembly of Designer TAL Effectors by Golden Gate Cloning
Author(s) -
E. Weber,
Ramona Gruetzner,
Stefan Werner,
Carola Engler,
Sylvestre Marillonnet
Publication year - 2011
Publication title -
plos one
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.99
H-Index - 332
ISSN - 1932-6203
DOI - 10.1371/journal.pone.0019722
Subject(s) - golden gate , computational biology , effector , dna , biology , tandem repeat , cloning (programming) , transcription activator like effector nuclease , genetics , dna binding site , genome , synthetic biology , genome editing , computer science , gene , microbiology and biotechnology , promoter , programming language , gene expression , civil engineering , span (engineering) , engineering
Generation of customized DNA binding domains targeting unique sequences in complex genomes is crucial for many biotechnological applications. The recently described DNA binding domain of the transcription activator-like effectors (TALEs) from Xanthomonas consists of a series of repeats arranged in tandem, each repeat binding a nucleotide of the target sequence. We present here a strategy for engineering of TALE proteins with novel DNA binding specificities based on the 17.5 repeat-containing AvrBs3 TALE as a scaffold. For each of the 17 full repeats, four module types were generated, each with a distinct base preference. Using this set of 68 repeat modules, recognition domains for any 17 nucleotide DNA target sequence of choice can be constructed by assembling selected modules in a defined linear order. Assembly is performed in two successive one-pot cloning steps using the Golden Gate cloning method that allows seamless fusion of multiple DNA fragments. Applying this strategy, we assembled designer TALEs with new target specificities and tested their function in vivo .

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