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result(s) for
"CRISPR-associated endonuclease 9"
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CRISPR/Cas9-mediated viral interference in plants
by
Idris, Ali
,
Ali, Shakila
,
Abulfaraj, Aala
in
Animal Genetics and Genomics
,
Archaea
,
Begomovirus - genetics
2015
Background
The CRISPR/Cas9 system provides bacteria and archaea with molecular immunity against invading phages and conjugative plasmids. Recently, CRISPR/Cas9 has been used for targeted genome editing in diverse eukaryotic species.
Results
In this study, we investigate whether the CRISPR/Cas9 system could be used in plants to confer molecular immunity against DNA viruses. We deliver sgRNAs specific for coding and non-coding sequences of tomato yellow leaf curl virus (TYLCV) into
Nicotiana benthamiana
plants stably overexpressing the Cas9 endonuclease, and subsequently challenge these plants with TYLCV. Our data demonstrate that the CRISPR/Cas9 system targeted TYLCV for degradation and introduced mutations at the target sequences. All tested sgRNAs exhibit interference activity, but those targeting the stem-loop sequence within the TYLCV origin of replication in the intergenic region (IR) are the most effective.
N. benthamiana
plants expressing CRISPR/Cas9 exhibit delayed or reduced accumulation of viral DNA, abolishing or significantly attenuating symptoms of infection. Moreover, this system could simultaneously target multiple DNA viruses.
Conclusions
These data establish the efficacy of the CRISPR/Cas9 system for viral interference in plants, thereby extending the utility of this technology and opening the possibility of producing plants resistant to multiple viral infections.
Journal Article
Engineering Cas9: next generation of genomic editors
by
Karpov, Dmitry S.
,
Kovalev, Maxim A.
,
Davletshin, Artem I.
in
Biomedical and Life Sciences
,
Biotechnology
,
CRISPR
2024
The Cas9 endonuclease of the CRISPR/Cas type IIA system from
Streptococcus pyogenes
is the heart of genome editing technology that can be used to treat human genetic and viral diseases. Despite its large size and other drawbacks,
S. pyogenes
Cas9 remains the most widely used genome editor. A vast amount of research is aimed at improving Cas9 as a promising genetic therapy. Strategies include directed evolution of the Cas9 protein, rational design, and domain swapping. The first generation of Cas9 editors comes directly from the wild-type protein. The next generation is obtained by combining mutations from the first-generation variants, adding new mutations to them, or refining mutations. This review summarizes and discusses recent advances and ways in the creation of next-generation genomic editors derived from
S. pyogenes
Cas9.
Key points
•
The next-generation Cas9-based editors are more active than in the first one.
•
PAM-relaxed variants of Cas9 are improved by increased specificity and activity.
•
Less mutagenic and immunogenic variants of Cas9 are created.
Journal Article
NmeCas9 is an intrinsically high-fidelity genome-editing platform
by
Amrani, Nadia
,
Fuller, Chris K.
,
Sasaki, Kanae E.
in
Amino acids
,
Animal Genetics and Genomics
,
Animals
2018
Background
The development of CRISPR genome editing has transformed biomedical research. Most applications reported thus far rely upon the Cas9 protein from
Streptococcus pyogenes
SF370 (SpyCas9). With many RNA guides, wildtype SpyCas9 can induce significant levels of unintended mutations at near-cognate sites, necessitating substantial efforts toward the development of strategies to minimize off-target activity. Although the genome-editing potential of thousands of other Cas9 orthologs remains largely untapped, it is not known how many will require similarly extensive engineering to achieve single-site accuracy within large genomes. In addition to its off-targeting propensity, SpyCas9 is encoded by a relatively large open reading frame, limiting its utility in applications that require size-restricted delivery strategies such as adeno-associated virus vectors. In contrast, some genome-editing-validated Cas9 orthologs are considerably smaller and therefore better suited for viral delivery.
Results
Here we show that wildtype NmeCas9, when programmed with guide sequences of the natural length of 24 nucleotides, exhibits a nearly complete absence of unintended editing in human cells, even when targeting sites that are prone to off-target activity with wildtype SpyCas9. We also validate at least six variant protospacer adjacent motifs (PAMs), in addition to the preferred consensus PAM (5′-N
4
GATT-3′), for NmeCas9 genome editing in human cells.
Conclusions
Our results show that NmeCas9 is a naturally high-fidelity genome-editing enzyme and suggest that additional Cas9 orthologs may prove to exhibit similarly high accuracy, even without extensive engineering.
Journal Article
Rapid characterization of CRISPR-Cas9 protospacer adjacent motif sequence elements
by
Cigan, Mark
,
Young, Joshua
,
Gasiunas, Giedrius
in
Animal Genetics and Genomics
,
Artificial chromosomes
,
Bacterial Proteins - genetics
2015
To expand the repertoire of Cas9s available for genome targeting, we present a new
in vitro
method for the simultaneous examination of guide RNA and protospacer adjacent motif (PAM) requirements. The method relies on the
in vitro
cleavage of plasmid libraries containing a randomized PAM as a function of Cas9-guide RNA complex concentration. Using this method, we accurately reproduce the canonical PAM preferences for
Streptococcus pyogenes
,
Streptococcus thermophilus
CRISPR3 (Sth3), and CRISPR1 (Sth1). Additionally, PAM and sgRNA solutions for a novel Cas9 protein from
Brevibacillus laterosporus
are provided by the assay and are demonstrated to support functional activity
in vitro
and in plants.
Journal Article
Cloning-free CRISPR/Cas system facilitates functional cassette knock-in in mice
2015
Although the CRISPR/Cas system has enabled one-step generation of knockout mice, low success rates of cassette knock-in limit its application range. Here we show that cloning-free, direct nuclear delivery of Cas9 protein complex with chemically synthesized dual RNAs enables highly efficient target digestion, leading to generation of knock-in mice carrying a functional cassette with up to 50% efficiency, compared with just 10% by a commonly used method consisting of Cas9 mRNA and single guide RNA. Our cloning-free CRISPR/Cas system facilitates rapid one-step generation of cassette knock-in mice, accelerating functional genomic research by providing various in vivo genetic tools.
Journal Article
CasKAS: direct profiling of genome-wide dCas9 and Cas9 specificity using ssDNA mapping
by
Bagdatli, S. Tansu
,
Greenleaf, William J.
,
Marinov, Georgi K.
in
Animal Genetics and Genomics
,
Bioinformatics
,
Biomedical and Life Sciences
2023
Detecting and mitigating off-target activity is critical to the practical application of CRISPR-mediated genome and epigenome editing. While numerous methods have been developed to map Cas9 binding specificity genome-wide, they are generally time-consuming and/or expensive, and not applicable to catalytically dead CRISPR enzymes. We have developed CasKAS, a rapid, inexpensive, and facile assay for identifying off-target CRISPR enzyme binding and cleavage by chemically mapping the unwound single-stranded DNA structures formed upon binding of a sgRNA-loaded Cas9 protein. We demonstrate this method in both in vitro and in vivo contexts.
Journal Article
Lipofection-mediated genome editing using DNA-free delivery of the Cas9/gRNA ribonucleoprotein into plant cells
by
Liu, Wusheng
,
Millwood, Reginald J.
,
Ondzighi-Assoume, Christine A.
in
Agrobacterium
,
biolistics
,
Biolistics - methods
2020
Key message
A novel and robust lipofection-mediated transfection approach for the use of DNA-free Cas9/gRNA RNP for gene editing has demonstrated efficacy in plant cells.
Precise genome editing has been revolutionized by CRISPR/Cas9 systems. DNA-based delivery of CRISPR/Cas9 is widely used in various plant species. However, protein-based delivery of the in vitro translated Cas9/guide RNA (gRNA) ribonucleoprotein (RNP) complex into plant cells is still in its infancy even though protein delivery has several advantages. These advantages include DNA-free delivery, gene-edited host plants that are not transgenic, ease of use, low cost, relative ease to be adapted to high-throughput systems, and low off-target cleavage rates. Here, we show a novel lipofection-mediated transfection approach for protein delivery of the preassembled Cas9/gRNA RNP into plant cells for genome editing. Two lipofection reagents, Lipofectamine 3000 and RNAiMAX, were adapted for successful delivery into plant cells of Cas9/gRNA RNP. A green fluorescent protein (GFP) reporter was fused in-frame with the C-terminus of the Cas9 protein and the fusion protein was successfully delivered into non-transgenic tobacco cv. ‘Bright Yellow-2’ (BY2) protoplasts. The optimal efficiencies for Lipofectamine 3000- and RNAiMAX-mediated protein delivery were 66% and 48%, respectively. Furthermore, we developed a biolistic method for protein delivery based on the known proteolistics technique. A transgenic tobacco BY2 line expressing an orange fluorescence protein reporter
pporRFP
was targeted for knockout. We found that the targeted mutagenesis frequency for our Lipofectamine 3000-mediated protein delivery was 6%. Our results showed that the newly developed lipofection-mediated transfection approach is robust for the use of the DNA-free Cas9/gRNA technology for genome editing in plant cells.
Journal Article
Conversion of hulled into naked barley by Cas endonuclease-mediated knockout of the NUD gene
by
Hiekel, Stefan
,
Hertig, Christian
,
Gerasimova, Sophia V.
in
Agriculture
,
Amino acids
,
Analysis
2020
Background
The naked caryopsis character in barley is a domestication-associated trait defined by loss-of-function of the
NUD
gene. The functional
NUD
gene encodes an Apetala 2/Ethylene-Response Factor (AP2/ERF) controlling the formation of a cementing layer between pericarp and both lemma and palea. The downstream genes regulated by the NUD transcription factor and molecular mechanism of a cementing layer formation are still not sufficiently described. A naturally occurring 17-kb deletion in the
nud
locus is associated with the emergence of naked barley. Naked barley has been traditionally used for food and nowadays is considered as a dietary component for functional nutrition.
Results
In the present study, we demonstrate that targeted knockout of the
NUD
gene using RNA-guided Cas9 endonuclease leads to the phenotype conversion from hulled to naked barley. Using in vivo pre-testing systems, highly effective guide RNAs targeting the first exon of the
NUD
gene were selected. Expression cassettes harboring the
cas9
and guide RNA genes were used to transform barley cv. Golden Promise via
Agrobacterium
-mediated DNA transfer. The recessive naked grain phenotype was observed in 57% of primary transformants, which indicates a frequent occurrence of homozygous or biallelic mutations. T-DNA-free homozygous lines with independently generated mutations in the
NUD
gene were obtained in the T1 generation. At homozygous state, all obtained mutations including one- and two-amino acid losses with the translational reading frame being retained invariably caused the naked grain phenotype.
Conclusions
The hulled and naked barley isogenic lines generated are a perfect experimental model for further studies on pleiotropic consequences of
nud
mutations on overall plant performance under particular consideration of yield-determining traits. Due to the high β-glucan content of its grains, naked barley is considered as being of particular dietary value. The possibility to convert hulled into naked barley cultivars by targeted mutagenesis allows breeders to extend the potential utilization of barley by the provision of functional food.
Journal Article
Manipulating plant RNA-silencing pathways to improve the gene editing efficiency of CRISPR/Cas9 systems
by
Zhang, Zhengjing
,
Yang, Xiaoxuan
,
Botella, Jose Ramon
in
Animal Genetics and Genomics
,
Arabidopsis
,
Arabidopsis - genetics
2018
Background
The CRISPR/Cas9 system, composed of a single-guide RNA for target recognition and a Cas9 protein for DNA cleavage, has the potential to revolutionize agriculture as well as medicine. Even though extensive work has been done to improve the gene editing activity of CRISPR/Cas9, little is known about the regulation of this bacterial system in eukaryotic host cells, especially at the post-transcriptional level.
Results
Here, we evaluate the expression levels of the two CRISPR/Cas9 components and the gene editing efficiency in a set of Arabidopsis mutants involved in RNA silencing. We find that mutants defective in the post-transcriptional gene-silencing pathway display significantly higher Cas9 and sgRNA transcript levels, resulting in higher mutagenesis frequencies than wild-type controls. Accordingly, silencing of AGO1 by introduction of an AGO1-RNAi cassette into the CRISPR/Cas9 vector provides an increase in gene editing efficiency. Co-expression of the viral suppressor p19 from the tomato bushy stunt virus to suppress the plant RNA-silencing pathway shows a strong correlation between the severity of the phenotypic effects caused by p19 and the gene editing efficiency of the CRISPR/Cas9 system for two different target genes, AP1 and TT4.
Conclusions
This system has useful practical applications in facilitating the detection of CRISPR/Cas9-induced mutations in T1 plants as well as the identification of transgene-free T2 plants by simple visual observation of the symptom severity caused by p19. Our study shows that CRISPR/Cas9 gene editing efficiency can be improved by reducing RNA silencing in plants.
Journal Article
Systematic evaluation of CRISPR-Cas systems reveals design principles for genome editing in human cells
by
Wang, Yuanming
,
Ismail, Nur Nadiah Binte
,
Liu, Kaiwen Ivy
in
Acidaminococcus
,
Amino acids
,
Animal Genetics and Genomics
2018
Background
While CRISPR-Cas systems hold tremendous potential for engineering the human genome, it is unclear how well each system performs against one another in both non-homologous end joining (NHEJ)-mediated and homology-directed repair (HDR)-mediated genome editing.
Results
We systematically compare five different CRISPR-Cas systems in human cells by targeting 90 sites in genes with varying expression levels. For a fair comparison, we select sites that are either perfectly matched or have overlapping seed regions for Cas9 and Cpf1. Besides observing a trade-off between cleavage efficiency and target specificity for these natural endonucleases, we find that the editing activities of the smaller Cas9 enzymes from
Staphylococcus aureus
(SaCas9) and
Neisseria meningitidis
(NmCas9) are less affected by gene expression than the other larger Cas proteins. Notably, the Cpf1 nucleases from
Acidaminococcus
sp. BV3L6 and
Lachnospiraceae
bacterium ND2006 (AsCpf1 and LbCpf1, respectively) are able to perform precise gene targeting efficiently across multiple genomic loci using single-stranded oligodeoxynucleotide (ssODN) donor templates with homology arms as short as 17 nucleotides. Strikingly, the two Cpf1 nucleases exhibit a preference for ssODNs of the non-target strand sequence, while the popular Cas9 enzyme from
Streptococcus pyogenes
(SpCas9) exhibits a preference for ssODNs of the target strand sequence instead. Additionally, we find that the HDR efficiencies of Cpf1 and SpCas9 can be further improved by using asymmetric donors with longer arms 5′ of the desired DNA changes.
Conclusions
Our work delineates design parameters for each CRISPR-Cas system and will serve as a useful reference for future genome engineering studies.
Journal Article