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Updated: Sep 9, 2025

Application of CRISPR Interference CRISPRi for Gene Silencing in Pathogenic Species of Leptospira
Published on: August 14, 2021
CRISPR interference in a Streptococcus agalactiae Multi-locus Sequence Type 17 Strain
Abstract:
Group B Streptococcus (GBS), a common colonizer of the human genital and gastrointestinal tracts, is a leading cause of neonatal bacterial meningitis, which can lead to severe neurological complications. The hypervirulent serotype III, sequence type 17 (ST-17) strain COH1 is strongly associated with late-onset disease due to its unique set of virulence factors. However, genetic manipulation of ST-17 strains is notoriously challenging, limiting the ability to study key pathogenic genes. In this study, we developed a CRISPR interference (CRISPRi) system utilizing an endogenous catalytically inactivated Cas9 (dCas9) in the COH1 strain, enabling targeted and tunable gene expression knockdown. We confirmed the efficacy of this system through hemolysis assays, qPCR transcriptional analysis, and in vitro infection models using human brain endothelial cells. The CRISPRi system successfully produced phenotypic knockdowns of essential virulence genes, including pilA, srr2 , and iagA , reducing adhesion, invasion, and inflammatory responses at the blood-brain barrier. This platform enables rapid gene knockdowns for functional genomics in ST-17 GBS, enabling high-throughput screening and pathogenesis research.
Importance:
Group B Streptococcus (GBS) remains the world's leading cause of neonatal meningitis. GBS-host interactions at the blood-brain barrier (BBB) are dependent on bacterial factors, including surface factors and two-component systems. Multi-locus sequence type 17 (ST-17) GBS strains are highly associated with neonatal meningitis, and these strains harbor many virulence factors for infection at the BBB. Historically, these factors have been studied using traditional knockout mutagenesis, which has proven challenging in the most common ST-17 lab strain, COH1. This study utilizes CRISPR interference (CRISPRi) to generate rapid expression knockdown. This study validates a CRISPRi-enabled COH1 dCas9 strain as a versatile tool for probing GBS pathogenesis at the BBB.
Insights
Researchers developed a CRISPR interference system for Group B Streptococcus (GBS) ST-17 strains. This tool enables targeted gene knockdown to study GBS meningitis pathogenesis at the blood-brain barrier.
Area of Science:
- Microbiology
- Genetics
- Infectious Diseases
Background:
- Group B Streptococcus (GBS) is a leading cause of neonatal bacterial meningitis.
- Hypervirulent serotype III, sequence type 17 (ST-17) GBS strains, like COH1, are strongly linked to severe neonatal disease.
- Genetic manipulation of ST-17 GBS strains is difficult, hindering research into virulence factors.
Purpose of the Study:
- To develop a CRISPR interference (CRISPRi) system for targeted gene knockdown in the ST-17 GBS COH1 strain.
- To enable functional genomics and high-throughput screening of GBS virulence factors.
- To facilitate research into GBS pathogenesis at the blood-brain barrier.
Main Methods:
- Development of a CRISPR interference (CRISPRi) system using catalytically inactivated Cas9 (dCas9) in the COH1 GBS strain.
- Confirmation of system efficacy using hemolysis assays, qPCR, and in vitro infection models with human brain endothelial cells.
- Targeted knockdown of key virulence genes including pilA, srr2, and iagA.
Main Results:
- Successful implementation of a tunable CRISPRi system in ST-17 GBS COH1.
- Demonstrated phenotypic knockdowns of essential GBS virulence genes.
- Reduced bacterial adhesion, invasion, and inflammatory responses at the blood-brain barrier.
Conclusions:
- The developed CRISPRi system provides a versatile platform for rapid gene knockdown in ST-17 GBS.
- This tool overcomes previous genetic manipulation challenges in COH1.
- Enables advanced research into GBS pathogenesis and host-pathogen interactions at the blood-brain barrier.
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