CRISPRloci: comprehensive and accurate annotation of CRISPR–Cas systems

Author:

Alkhnbashi Omer S1ORCID,Mitrofanov Alexander1,Bonidia Robson2,Raden Martin1ORCID,Tran Van Dinh1ORCID,Eggenhofer Florian1ORCID,Shah Shiraz A3,Öztürk Ekrem1,Padilha Victor A2,Sanches Danilo S4,de Carvalho André C P L F2,Backofen Rolf15ORCID

Affiliation:

1. Bioinformatics Group, Department of Computer Science, University of Freiburg, Georges-Koehler-Allee 106, 79110 Freiburg, Germany

2. Institute of Mathematics and Computer Sciences, University of São Paulo, São Carlos, SP, Brazil

3. Copenhagen Prospective Studies on Asthma in Childhood, Herlev and Gentofte Hospital, University of Copenhagen, Denmark

4. Universidade Tecnológica Federal do Paraná, Campus Cornélio Procópio, 86300000 Cornélio Procópio, PR, Brazil

5. Signalling Research Centres BIOSS and CIBSS, University of Freiburg, Schaenzlestr. 18, 79104 Freiburg, Germany

Abstract

Abstract CRISPR–Cas systems are adaptive immune systems in prokaryotes, providing resistance against invading viruses and plasmids. The identification of CRISPR loci is currently a non-standardized, ambiguous process, requiring the manual combination of multiple tools, where existing tools detect only parts of the CRISPR-systems, and lack quality control, annotation and assessment capabilities of the detected CRISPR loci. Our CRISPRloci server provides the first resource for the prediction and assessment of all possible CRISPR loci. The server integrates a series of advanced Machine Learning tools within a seamless web interface featuring: (i) prediction of all CRISPR arrays in the correct orientation; (ii) definition of CRISPR leaders for each locus; and (iii) annotation of cas genes and their unambiguous classification. As a result, CRISPRloci is able to accurately determine the CRISPR array and associated information, such as: the Cas subtypes; cassette boundaries; accuracy of the repeat structure, orientation and leader sequence; virus-host interactions; self-targeting; as well as the annotation of cas genes, all of which have been missing from existing tools. This annotation is presented in an interactive interface, making it easy for scientists to gain an overview of the CRISPR system in their organism of interest. Predictions are also rendered in GFF format, enabling in-depth genome browser inspection. In summary, CRISPRloci constitutes a full suite for CRISPR–Cas system characterization that offers annotation quality previously available only after manual inspection.

Funder

Deutsche Forschungsgemeinschaft

Coordenação de Aperfeiçoamento de Pessoal de Nível Superior

São Paulo Research Foundation

Baden-Wuerttemberg Ministry of Science, Research and Art

University of Freiburg

Publisher

Oxford University Press (OUP)

Subject

Genetics

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