Literature DB >> 34588691

Mechanism for Cas4-assisted directional spacer acquisition in CRISPR-Cas.

Chunyi Hu1, Cristóbal Almendros2,3, Ki Hyun Nam4, Ana Rita Costa2,3, Jochem N A Vink2,3, Anna C Haagsma2,3, Saket R Bagde1, Stan J J Brouns5,6, Ailong Ke7.   

Abstract

Prokaryotes adapt to challenges from mobile genetic elements by integrating spacers derived from foreign DNA in the CRISPR array1. Spacer insertion is carried out by the Cas1-Cas2 integrase complex2-4. A substantial fraction of CRISPR-Cas systems use a Fe-S cluster containing Cas4 nuclease to ensure that spacers are acquired from DNA flanked by a protospacer adjacent motif (PAM)5,6 and inserted into the CRISPR array unidirectionally, so that the transcribed CRISPR RNA can guide target searching in a PAM-dependent manner. Here we provide a high-resolution mechanistic explanation for the Cas4-assisted PAM selection, spacer biogenesis and directional integration by type I-G CRISPR in Geobacter sulfurreducens, in which Cas4 is naturally fused with Cas1, forming Cas4/Cas1. During biogenesis, only DNA duplexes possessing a PAM-embedded 3'-overhang trigger Cas4/Cas1-Cas2 assembly. During this process, the PAM overhang is specifically recognized and sequestered, but is not cleaved by Cas4. This 'molecular constipation' prevents the PAM-side prespacer from participating in integration. Lacking such sequestration, the non-PAM overhang is trimmed by host nucleases and integrated to the leader-side CRISPR repeat. Half-integration subsequently triggers PAM cleavage and Cas4 dissociation, allowing spacer-side integration. Overall, the intricate molecular interaction between Cas4 and Cas1-Cas2 selects PAM-containing prespacers for integration and couples the timing of PAM processing with the stepwise integration to establish directionality.
© 2021. The Author(s), under exclusive licence to Springer Nature Limited.

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Year:  2021        PMID: 34588691      PMCID: PMC9164213          DOI: 10.1038/s41586-021-03951-z

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


  55 in total

1.  Structure basis for RNA-guided DNA degradation by Cascade and Cas3.

Authors:  Yibei Xiao; Min Luo; Adam E Dolan; Maofu Liao; Ailong Ke
Journal:  Science       Date:  2018-06-07       Impact factor: 47.728

2.  Protecting genome integrity during CRISPR immune adaptation.

Authors:  Addison V Wright; Jennifer A Doudna
Journal:  Nat Struct Mol Biol       Date:  2016-09-05       Impact factor: 15.369

3.  MAFFT multiple sequence alignment software version 7: improvements in performance and usability.

Authors:  Kazutaka Katoh; Daron M Standley
Journal:  Mol Biol Evol       Date:  2013-01-16       Impact factor: 16.240

4.  The NIH Human Microbiome Project.

Authors:  Jane Peterson; Susan Garges; Maria Giovanni; Pamela McInnes; Lu Wang; Jeffery A Schloss; Vivien Bonazzi; Jean E McEwen; Kris A Wetterstrand; Carolyn Deal; Carl C Baker; Valentina Di Francesco; T Kevin Howcroft; Robert W Karp; R Dwayne Lunsford; Christopher R Wellington; Tsegahiwot Belachew; Michael Wright; Christina Giblin; Hagit David; Melody Mills; Rachelle Salomon; Christopher Mullins; Beena Akolkar; Lisa Begg; Cindy Davis; Lindsey Grandison; Michael Humble; Jag Khalsa; A Roger Little; Hannah Peavy; Carol Pontzer; Matthew Portnoy; Michael H Sayre; Pamela Starke-Reed; Samir Zakhari; Jennifer Read; Bracie Watson; Mark Guyer
Journal:  Genome Res       Date:  2009-10-09       Impact factor: 9.043

5.  Short motif sequences determine the targets of the prokaryotic CRISPR defence system.

Authors:  F J M Mojica; C Díez-Villaseñor; J García-Martínez; C Almendros
Journal:  Microbiology       Date:  2009-03       Impact factor: 2.777

6.  GenBank.

Authors:  Dennis A Benson; Mark Cavanaugh; Karen Clark; Ilene Karsch-Mizrachi; James Ostell; Kim D Pruitt; Eric W Sayers
Journal:  Nucleic Acids Res       Date:  2018-01-04       Impact factor: 16.971

7.  Phylogenomics of Cas4 family nucleases.

Authors:  Sanjarbek Hudaiberdiev; Sergey Shmakov; Yuri I Wolf; Michael P Terns; Kira S Makarova; Eugene V Koonin
Journal:  BMC Evol Biol       Date:  2017-11-28       Impact factor: 3.260

8.  The Cas4-Cas1-Cas2 complex mediates precise prespacer processing during CRISPR adaptation.

Authors:  Hayun Lee; Yukti Dhingra; Dipali G Sashital
Journal:  Elife       Date:  2019-04-30       Impact factor: 8.140

9.  Database resources of the National Center for Biotechnology Information.

Authors:  Eric W Sayers; Tanya Barrett; Dennis A Benson; Stephen H Bryant; Kathi Canese; Vyacheslav Chetvernin; Deanna M Church; Michael DiCuccio; Ron Edgar; Scott Federhen; Michael Feolo; Lewis Y Geer; Wolfgang Helmberg; Yuri Kapustin; David Landsman; David J Lipman; Thomas L Madden; Donna R Maglott; Vadim Miller; Ilene Mizrachi; James Ostell; Kim D Pruitt; Gregory D Schuler; Edwin Sequeira; Stephen T Sherry; Martin Shumway; Karl Sirotkin; Alexandre Souvorov; Grigory Starchenko; Tatiana A Tatusova; Lukas Wagner; Eugene Yaschenko; Jian Ye
Journal:  Nucleic Acids Res       Date:  2008-10-21       Impact factor: 16.971

10.  Foreign DNA capture during CRISPR-Cas adaptive immunity.

Authors:  James K Nuñez; Lucas B Harrington; Philip J Kranzusch; Alan N Engelman; Jennifer A Doudna
Journal:  Nature       Date:  2015-10-21       Impact factor: 49.962

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  3 in total

Review 1.  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 2.  Creating memories: molecular mechanisms of CRISPR adaptation.

Authors:  Hayun Lee; Dipali G Sashital
Journal:  Trends Biochem Sci       Date:  2022-02-28       Impact factor: 14.264

3.  Adaptation by Type V-A and V-B CRISPR-Cas Systems Demonstrates Conserved Protospacer Selection Mechanisms Between Diverse CRISPR-Cas Types.

Authors:  Wen Y Wu; Simon A Jackson; Cristóbal Almendros; Anna C Haagsma; Suzan Yilmaz; Gerrit Gort; John van der Oost; Stan J J Brouns; Raymond H J Staals
Journal:  CRISPR J       Date:  2022-07-12
  3 in total

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