Literature DB >> 34759315

Target site selection and remodelling by type V CRISPR-transposon systems.

Irma Querques1, Michael Schmitz1, Seraina Oberli1, Christelle Chanez1, Martin Jinek2.   

Abstract

Canonical CRISPR-Cas systems provide adaptive immunity against mobile genetic elements1. However, type I-F, I-B and V-K systems have been adopted by Tn7-like transposons to direct RNA-guided transposon insertion2-7. Type V-K CRISPR-associated transposons rely on the pseudonuclease Cas12k, the transposase TnsB, the AAA+ ATPase TnsC and the zinc-finger protein TniQ7, but the molecular mechanism of RNA-directed DNA transposition has remained elusive. Here we report cryo-electron microscopic structures of a Cas12k-guide RNA-target DNA complex and a DNA-bound, polymeric TnsC filament from the CRISPR-associated transposon system of the photosynthetic cyanobacterium Scytonema hofmanni. The Cas12k complex structure reveals an intricate guide RNA architecture and critical interactions mediating RNA-guided target DNA recognition. TnsC helical filament assembly is ATP-dependent and accompanied by structural remodelling of the bound DNA duplex. In vivo transposition assays corroborate key features of the structures, and biochemical experiments show that TniQ restricts TnsC polymerization, while TnsB interacts directly with TnsC filaments to trigger their disassembly upon ATP hydrolysis. Together, these results suggest that RNA-directed target selection by Cas12k primes TnsC polymerization and DNA remodelling, generating a recruitment platform for TnsB to catalyse site-specific transposon insertion. Insights from this work will inform the development of CRISPR-associated transposons as programmable site-specific gene insertion tools.
© 2021. The Author(s), under exclusive licence to Springer Nature Limited.

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Year:  2021        PMID: 34759315      PMCID: PMC7613401          DOI: 10.1038/s41586-021-04030-z

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   69.504


  52 in total

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2.  An Atypical AAA+ ATPase Assembly Controls Efficient Transposition through DNA Remodeling and Transposase Recruitment.

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Journal:  Cell       Date:  2015-08-13       Impact factor: 41.582

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Journal:  EMBO J       Date:  1996-11-15       Impact factor: 11.598

6.  XDS.

Authors:  Wolfgang Kabsch
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7.  Structural basis of a Tn7-like transposase recruitment and DNA loading to CRISPR-Cas surveillance complex.

Authors:  Beibei Wang; Wenhao Xu; Hui Yang
Journal:  Cell Res       Date:  2020-01-08       Impact factor: 25.617

8.  Structural basis for target site selection in RNA-guided DNA transposition systems.

Authors:  Amy Wei-Lun Tsai; Eshan Mehrotra; Michael T Petassi; Shan-Chi Hsieh; Jung-Un Park; Ailong Ke; Joseph E Peters; Elizabeth H Kellogg
Journal:  Science       Date:  2021-07-15       Impact factor: 63.714

9.  Transposition into replicating DNA occurs through interaction with the processivity factor.

Authors:  Adam R Parks; Zaoping Li; Qiaojuan Shi; Roisin M Owens; Moonsoo M Jin; Joseph E Peters
Journal:  Cell       Date:  2009-08-21       Impact factor: 41.582

10.  CasX enzymes comprise a distinct family of RNA-guided genome editors.

Authors:  Jun-Jie Liu; Natalia Orlova; Benjamin L Oakes; Enbo Ma; Hannah B Spinner; Katherine L M Baney; Jonathan Chuck; Dan Tan; Gavin J Knott; Lucas B Harrington; Basem Al-Shayeb; Alexander Wagner; Julian Brötzmann; Brett T Staahl; Kian L Taylor; John Desmarais; Eva Nogales; Jennifer A Doudna
Journal:  Nature       Date:  2019-02-04       Impact factor: 49.962

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  7 in total

1.  Selective TnsC recruitment enhances the fidelity of RNA-guided transposition.

Authors:  Florian T Hoffmann; Minjoo Kim; Leslie Y Beh; Jing Wang; Phuc Leo H Vo; Diego R Gelsinger; Jerrin Thomas George; Christopher Acree; Jason T Mohabir; Israel S Fernández; Samuel H Sternberg
Journal:  Nature       Date:  2022-08-24       Impact factor: 69.504

Review 2.  Structural biology of CRISPR-Cas immunity and genome editing enzymes.

Authors:  Joy Y Wang; Patrick Pausch; Jennifer A Doudna
Journal:  Nat Rev Microbiol       Date:  2022-05-13       Impact factor: 78.297

Review 3.  CRISPR-based genome editing through the lens of DNA repair.

Authors:  Tarun S Nambiar; Lou Baudrier; Pierre Billon; Alberto Ciccia
Journal:  Mol Cell       Date:  2022-01-20       Impact factor: 17.970

4.  Mechanistic details of CRISPR-associated transposon recruitment and integration revealed by cryo-EM.

Authors:  Jung-Un Park; Amy Wei-Lun Tsai; Tiffany H Chen; Joseph E Peters; Elizabeth H Kellogg
Journal:  Proc Natl Acad Sci U S A       Date:  2022-08-01       Impact factor: 12.779

5.  CRISPRtracrRNA: robust approach for CRISPR tracrRNA detection.

Authors:  Alexander Mitrofanov; Marcus Ziemann; Omer S Alkhnbashi; Wolfgang R Hess; Rolf Backofen
Journal:  Bioinformatics       Date:  2022-09-16       Impact factor: 6.931

6.  A versatile Cas12k-based genetic engineering toolkit (C12KGET) for metabolic engineering in genetic manipulation-deprived strains.

Authors:  Yali Cui; Huina Dong; Baisong Tong; Huiying Wang; Xipeng Chen; Guangqing Liu; Dawei Zhang
Journal:  Nucleic Acids Res       Date:  2022-08-26       Impact factor: 19.160

7.  Structure of the TnsB transposase-DNA complex of type V-K CRISPR-associated transposon.

Authors:  Francisco Tenjo-Castaño; Nicholas Sofos; Blanca López-Méndez; Luisa S Stutzke; Anders Fuglsang; Stefano Stella; Guillermo Montoya
Journal:  Nat Commun       Date:  2022-10-02       Impact factor: 17.694

  7 in total

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