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1.
Mol Cell ; 82(4): 852-867.e5, 2022 02 17.
Article in English | MEDLINE | ID: mdl-35051351

ABSTRACT

Leading CRISPR-Cas technologies employ Cas9 and Cas12 enzymes that generate RNA-guided dsDNA breaks. Yet, the most abundant microbial adaptive immune systems, Type I CRISPRs, are under-exploited for eukaryotic applications. Here, we report the adoption of a minimal CRISPR-Cas3 from Neisseria lactamica (Nla) type I-C system to create targeted large deletions in the human genome. RNP delivery of its processive Cas3 nuclease and target recognition complex Cascade can confer ∼95% editing efficiency. Unexpectedly, NlaCascade assembly in bacteria requires internal translation of a hidden component Cas11 from within the cas8 gene. Furthermore, expressing a separately encoded NlaCas11 is the key to enable plasmid- and mRNA-based editing in human cells. Finally, we demonstrate that supplying cas11 is a universal strategy to systematically implement divergent I-C, I-D, and I-B CRISPR-Cas3 editors with compact sizes, distinct PAM preferences, and guide orthogonality. These findings greatly expand our ability to engineer long-range genome edits.


Subject(s)
Bacterial Proteins/genetics , CRISPR-Associated Proteins/genetics , CRISPR-Cas Systems , Clustered Regularly Interspaced Short Palindromic Repeats , Gene Deletion , Gene Editing , Genome, Human , Neisseria lactamica/genetics , Bacterial Proteins/metabolism , CRISPR-Associated Proteins/metabolism , HEK293 Cells , HeLa Cells , Humans , Neisseria lactamica/enzymology , Ribonucleoproteins/genetics , Ribonucleoproteins/metabolism
2.
Methods ; 172: 32-41, 2020 02 01.
Article in English | MEDLINE | ID: mdl-31228550

ABSTRACT

The majority of bacteria and archaea rely on CRISPR-Cas systems for RNA-guided, adaptive immunity against mobile genetic elements. The Cas9 family of type II CRISPR-associated DNA endonucleases generates programmable double strand breaks in the CRISPR-complementary DNA targets flanked by the PAM motif. Nowadays, CRISPR-Cas9 provides a set of powerful tools for precise genome manipulation in eukaryotes and prokaryotes. Recently, a few Cas9 orthologs have been reported to possess intrinsic CRISPR-guided, sequence-specific ribonuclease activities. These discoveries fundamentally expanded the targeting capability of CRISPR-Cas9 systems, and promise to provide new CRISPR tools to manipulate specific cellular RNA transcripts. Here we present a detailed method for the biochemical characterization of Cas9's RNA-targeting potential.


Subject(s)
CRISPR-Associated Protein 9/metabolism , CRISPR-Cas Systems/genetics , Enzyme Assays/methods , RNA, Guide, Kinetoplastida/metabolism , Bacteriophages/metabolism , CRISPR-Associated Protein 9/antagonists & inhibitors , Enzyme Assays/instrumentation , Neisseria meningitidis/enzymology , Neisseria meningitidis/genetics , Neisseria meningitidis/virology , RNA, Guide, Kinetoplastida/genetics , Viral Proteins/metabolism
3.
Mol Cell ; 74(5): 936-950.e5, 2019 06 06.
Article in English | MEDLINE | ID: mdl-30975459

ABSTRACT

CRISPR-Cas systems enable microbial adaptive immunity and provide eukaryotic genome editing tools. These tools employ a single effector enzyme of type II or V CRISPR to generate RNA-guided, precise genome breaks. Here we demonstrate the feasibility of using type I CRISPR-Cas to effectively introduce a spectrum of long-range chromosomal deletions with a single RNA guide in human embryonic stem cells and HAP1 cells. Type I CRISPR systems rely on the multi-subunit ribonucleoprotein (RNP) complex Cascade to identify DNA targets and on the helicase-nuclease enzyme Cas3 to degrade DNA processively. With RNP delivery of T. fusca Cascade and Cas3, we obtained 13%-60% editing efficiency. Long-range PCR-based and high-throughput-sequencing-based lesion analyses reveal that a variety of deletions, ranging from a few hundred base pairs to 100 kilobases, are created upstream of the target site. These results highlight the potential utility of type I CRISPR-Cas for long-range genome manipulations and deletion screens in eukaryotes.


Subject(s)
CRISPR-Cas Systems/genetics , Human Embryonic Stem Cells , RNA, Guide, Kinetoplastida/genetics , Sequence Deletion/genetics , Endonucleases/chemistry , Endonucleases/genetics , Escherichia coli/genetics , Gene Editing/methods , Genome, Human/genetics , Genomics , Humans , Ribonucleoproteins/genetics
4.
Mol Cell ; 69(5): 906-914.e4, 2018 03 01.
Article in English | MEDLINE | ID: mdl-29456189

ABSTRACT

The microbial CRISPR systems enable adaptive defense against mobile elements and also provide formidable tools for genome engineering. The Cas9 proteins are type II CRISPR-associated, RNA-guided DNA endonucleases that identify double-stranded DNA targets by sequence complementarity and protospacer adjacent motif (PAM) recognition. Here we report that the type II-C CRISPR-Cas9 from Neisseria meningitidis (Nme) is capable of programmable, RNA-guided, site-specific cleavage and recognition of single-stranded RNA targets and that this ribonuclease activity is independent of the PAM sequence. We define the mechanistic feature and specificity constraint for RNA cleavage by NmeCas9 and also show that nuclease null dNmeCas9 binds to RNA target complementary to CRISPR RNA. Finally, we demonstrate that NmeCas9-catalyzed RNA cleavage can be blocked by three families of type II-C anti-CRISPR proteins. These results fundamentally expand the targeting capacities of CRISPR-Cas9 and highlight the potential utility of NmeCas9 as a single platform to target both RNA and DNA.


Subject(s)
CRISPR-Cas Systems/physiology , Neisseria meningitidis/metabolism , RNA Stability/physiology , RNA, Bacterial/metabolism , CRISPR-Associated Protein 9/genetics , CRISPR-Associated Protein 9/metabolism , Neisseria meningitidis/genetics , RNA, Bacterial/genetics
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