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Published on: June 16, 2017
CRISPR-Cas-Based Antimicrobials: Design, Challenges, and Bacterial Mechanisms of Resistance
Arianna Mayorga-Ramos1, Johana Zúñiga-Miranda1, Saskya E Carrera-Pacheco1
1Centro de Investigación Biomédica (CENBIO), Facultad de Ciencias de la Salud Eugenio Espejo, Universidad UTE, Quito 170527, Ecuador.
Abstract:
The emergence of antibiotic-resistant bacterial strains is a source of public health concern across the globe. As the discovery of new conventional antibiotics has stalled significantly over the past decade, there is an urgency to develop novel approaches to address drug resistance in infectious diseases. The use of a CRISPR-Cas-based system for the precise elimination of targeted bacterial populations holds promise as an innovative approach for new antimicrobial agent design. The CRISPR-Cas targeting system is celebrated for its high versatility and specificity, offering an excellent opportunity to fight antibiotic resistance in pathogens by selectively inactivating genes involved in antibiotic resistance, biofilm formation, pathogenicity, virulence, or bacterial viability. The CRISPR-Cas strategy can enact antimicrobial effects by two approaches: inactivation of chromosomal genes or curing of plasmids encoding antibiotic resistance. In this Review, we provide an overview of the main CRISPR-Cas systems utilized for the creation of these antimicrobials, as well as highlighting promising studies in the field. We also offer a detailed discussion about the most commonly used mechanisms for CRISPR-Cas delivery: bacteriophages, nanoparticles, and conjugative plasmids. Lastly, we address possible mechanisms of interference that should be considered during the intelligent design of these novel approaches.
Insights
CRISPR-Cas systems offer a novel approach to combat antibiotic resistance by precisely targeting and eliminating harmful bacteria. This technology inactivates essential bacterial genes or removes resistance-encoding plasmids, providing a promising strategy against drug-resistant infections.
Area of Science:
- Microbiology
- Biotechnology
- Genetics
Background:
- Antibiotic resistance is a growing global health threat due to the stagnation of new antibiotic discovery.
- Novel strategies are urgently needed to combat drug-resistant bacterial infections.
Purpose of the Study:
- To review CRISPR-Cas systems as a novel antimicrobial agent design.
- To highlight promising studies and delivery mechanisms for CRISPR-Cas based antimicrobials.
Main Methods:
- Overview of CRISPR-Cas systems for antimicrobial development.
- Discussion of gene inactivation or plasmid curing mechanisms.
- Analysis of delivery methods including bacteriophages, nanoparticles, and conjugative plasmids.
Main Results:
- CRISPR-Cas systems demonstrate high versatility and specificity for targeting bacterial genes.
- Selective inactivation of antibiotic resistance, biofilm, or virulence genes is achievable.
- Two primary mechanisms include chromosomal gene inactivation and plasmid curing.
Conclusions:
- CRISPR-Cas technology presents a promising innovative approach to developing new antimicrobial agents.
- Effective delivery systems are crucial for the successful application of CRISPR-Cas antimicrobials.
- Consideration of interference mechanisms is vital for intelligent design and application.
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