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  1. IPB Halle
  2. Research
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    • Research Mission and Profile
    • Trenner 0
    • Molecular Signal Processing
      • Secretariat & All Staff
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        • Nutrient Sensing
        • Symbiosis Signaling
        • Jasmonate Signaling
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      • Secretariat & All Staff
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        • Natural Products & Metabolomics
        • Biotechnology
        • Biofunctional Synthesis
        • Computational Chemistry
        • Data & Resources
    • Biochemistry of Plant Interactions
      • Secretariat & All Staff
      • Technical Resources
      • Publications
      • Research Groups
        • Calcium-dependent Protein Kinases
        • Cellular Signaling
        • Metabolite-based Defense Mechanisms
        • Nuclear Processes in Plant Defense
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      • Secretariat & All Staff
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Publications

Weber, E.; Gruetzner, R.; Werner, S.; Engler, C.; Marillonnet, S.; Assembly of Designer TAL Effectors by Golden Gate Cloning PLOS ONE 6 e19722 (2011) DOI: 10.1371/journal.pone.0019722
  • Abstract
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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.

Publications

Weber, E.; Engler, C.; Gruetzner, R.; Werner, S.; Marillonnet, S.; A Modular Cloning System for Standardized Assembly of Multigene Constructs PLOS ONE 6 e16765 (2011) DOI: 10.1371/journal.pone.0016765
  • Abstract
  • BibText
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The field of synthetic biology promises to revolutionize biotechnology through the design of organisms with novel phenotypes useful for medicine, agriculture and industry. However, a limiting factor is the ability of current methods to assemble complex DNA molecules encoding multiple genetic elements in various predefined arrangements. We present here a hierarchical modular cloning system that allows the creation at will and with high efficiency of any eukaryotic multigene construct, starting from libraries of defined and validated basic modules containing regulatory and coding sequences. This system is based on the ability of type IIS restriction enzymes to assemble multiple DNA fragments in a defined linear order. We constructed a 33 kb DNA molecule containing 11 transcription units made from 44 individual basic modules in only three successive cloning steps. This modular cloning (MoClo) system can be readily automated and will be extremely useful for applications such as gene stacking and metabolic engineering.

Publications

Thieme, F.; Engler, C.; Kandzia, R.; Marillonnet, S.; Quick and Clean Cloning: A Ligation-Independent Cloning Strategy for Selective Cloning of Specific PCR Products from Non-Specific Mixes PLOS ONE 6 e20556 (2011) DOI: 10.1371/journal.pone.0020556
  • Abstract
  • BibText
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We have developed an efficient strategy for cloning of PCR products that contain an unknown region flanked by a known sequence. As with ligation-independent cloning, the strategy is based on homology between sequences present in both the vector and the insert. However, in contrast to ligation-independent cloning, the cloning vector has homology with only one of the two primers used for amplification of the insert. The other side of the linearized cloning vector has homology with a sequence present in the insert, but nested and non-overlapping with the gene-specific primer used for amplification. Since only specific products contain this sequence, but none of the non-specific products, only specific products can be cloned. Cloning is performed using a one-step reaction that only requires incubation for 10 minutes at room temperature in the presence of T4 DNA polymerase to generate single-stranded extensions at the ends of the vector and insert. The reaction mix is then directly transformed into E. coli where the annealed vector-insert complex is repaired and ligated. We have tested this method, which we call quick and clean cloning (QC cloning), for cloning of the variable regions of immunoglobulins expressed in non-Hodgkin lymphoma tumor samples. This method can also be applied to identify the flanking sequence of DNA elements such as T-DNA or transposon insertions, or be used for cloning of any PCR product with high specificity.

Books and chapters

Engler, C.; Marillonnet, S.; Generation of Families of Construct Variants Using Golden Gate Shuffling Lu, C. et al., eds. Methods Mol. Biol. 729 167-181 (2011) ISBN:978-1-61779-065-2 DOI: 10.1007/978-1-61779-065-2_11
  • Abstract
  • BibText
  • RIS

Current standard cloning methods based on the use of restriction enzymes and ligase are very versatile, but are not well suited for high-throughput cloning projects or for assembly of many DNA fragments from several parental plasmids in a single step. We have previously reported the development of an efficient cloning method based on the use of type IIs restriction enzymes and restriction–ligation. Such method allows seamless assembly of multiple fragments from several parental plasmids with high efficiency, and also allows performing DNA shuffling if fragments prepared from several homologous genes are assembled together in a single restriction–ligation. Such protocol, called Golden Gate shuffling, requires performing the following steps: (1) sequences from several homologous genes are aligned, and recombination sites defined on conserved sequences; (2) modules defined by the position of these recombination sites are amplified by PCR with primers designed to equip them with flanking BsaI sites; (3) the amplified fragments are cloned as intermediate constructs and sequenced; and (4) finally, the intermediate modules are assembled together in a compatible recipient vector in a one-pot restriction–ligation. Depending on the needs of the user, and because of the high cloning efficiency, the resulting constructs can either be screened and analyzed individually, or, if required in larger numbers, directly used in functional screens to detect improved protein variants.

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