Systematic interrogation of CRISPR antimicrobials in Klebsiella pneumoniae reveals nuclease-, guide- and strain-dependent features influencing antimicrobial activity

Author:

Vialetto Elena1ORCID,Miele Solange2,Goren Moran G3ORCID,Yu Jiaqi1,Yu Yanying1,Collias Daphne1,Beamud Beatriz2,Osbelt Lisa45,Lourenço Marta6,Strowig Till45,Brisse Sylvain6ORCID,Barquist Lars178ORCID,Qimron Udi3ORCID,Bikard David2ORCID,Beisel Chase L18ORCID

Affiliation:

1. Helmholtz Institute for RNA-based Infection Research (HIRI), Helmholtz Centre for Infection Research (HZI) , 97080  Würzburg , Germany

2. Institut Pasteur, Université Paris Cité, Synthetic Biology ,  Paris , France

3. Faculty of Medicine, Tel Aviv University , 69978  Tel Aviv , Israel

4. Helmholtz Centre for Infection Research (HZI) , 38124  Braunschweig , Germany

5. German Center for Infection Research (DZIF), partner site Hannover-Braunschweig , 38124  Braunschweig , Germany

6. Institut Pasteur, Université Paris Cité, Biodiversity and Epidemiology of Bacterial Pathogens , Paris , France

7. Department of Biology, University of Toronto Mississauga , Mississauga , Ontario  L5L 1C6 , Canada

8. University of Würzburg, Medical Faculty , 97080  Würzburg , Germany

Abstract

Abstract CRISPR-Cas systems can be utilized as programmable-spectrum antimicrobials to combat bacterial infections. However, how CRISPR nucleases perform as antimicrobials across target sites and strains remains poorly explored. Here, we address this knowledge gap by systematically interrogating the use of CRISPR antimicrobials using multidrug-resistant and hypervirulent strains of Klebsiella pneumoniae as models. Comparing different Cas nucleases, DNA-targeting nucleases outperformed RNA-targeting nucleases based on the tested targets. Focusing on AsCas12a that exhibited robust targeting across different strains, we found that the elucidated modes of escape varied widely, restraining opportunities to enhance killing. We also encountered individual guide RNAs yielding different extents of clearance across strains, which were linked to an interplay between improper gRNA folding and strain-specific DNA repair and survival. To explore features that could improve targeting across strains, we performed a genome-wide screen in different K. pneumoniae strains that yielded guide design rules and trained an algorithm for predicting guide efficiency. Finally, we showed that Cas12a antimicrobials can be exploited to eliminate K. pneumoniae when encoded in phagemids delivered by T7-like phages. Altogether, our results highlight the importance of evaluating antimicrobial activity of CRISPR antimicrobials across relevant strains and define critical parameters for efficient CRISPR-based targeting.

Funder

Joint Programming Initiative on Antimicrobial Resistance

Pfizer Foundation

Bavarian State Ministry for Science and the Arts

European Research Council

Publisher

Oxford University Press (OUP)

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