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Updated: Oct 10, 2025

Application of CRISPR Interference CRISPRi for Gene Silencing in Pathogenic Species of Leptospira
Published on: August 14, 2021
Crosstalk between E-Cadherin/β-Catenin and NF-κB Signaling Pathways: The Regulation of Host-Pathogen Interaction
Shen-Hsing Hsu1, Li-Fang Chou1, Chung-Hung Hong1
1Kidney Research Center, Department of Nephrology, Chang Gung Memorial Hospital, College of Medicine, Chang Gung University, 5 Fu-Shing St., Taoyuan 33333, Taiwan.
Abstract:
Approximately 1 million cases of leptospirosis, an emerging infectious zoonotic disease, are reported each year. Pathogenic Leptospira species express leucine-rich repeat (LRR) proteins that are rarely expressed in non-pathogenic Leptospira species. The LRR domain-containing protein family is vital for the virulence of pathogenic Leptospira species. In this study, the biological mechanisms of an essential LRR domain protein from pathogenic Leptospira were examined. The effects of Leptospira and recombinant LRR20 (rLRR20) on the expression levels of factors involved in signal transduction were examined using microarray, quantitative real-time polymerase chain reaction, and western blotting. The secreted biomarkers were measured using an enzyme-linked immunosorbent assay. rLRR20 colocalized with E-cadherin on the cell surface and activated the downstream transcription factor β-catenin, which subsequently promoted the expression of MMP7, a kidney injury biomarker. Additionally, MMP7 inhibitors were used to demonstrate that the secreted MMP7 degrades surface E-cadherin. This feedback inhibition mechanism downregulated surface E-cadherin expression and inhibited the colonization of Leptospira. The degradation of surface E-cadherin activated the NF-κB signal transduction pathway. Leptospirosis-associated acute kidney injury is associated with the secretion of NGAL, a downstream upregulated biomarker of the NF-κB signal transduction pathway. A working model was proposed to illustrate the crosstalk between E-cadherin/β-catenin and NF-κB signal transduction pathways during Leptospira infection. Thus, rLRR20 of Leptospira induces kidney injury in host cells and inhibits the adhesion and invasion of Leptospira through the upregulation of MMP7 and NGAL.
Insights
Leptospira
Area of Science:
- Microbiology
- Infectious Diseases
- Molecular Biology
Background:
- Leptospirosis is an emerging zoonotic disease caused by pathogenic Leptospira species.
- Leucine-rich repeat (LRR) proteins are crucial for Leptospira virulence and are expressed by pathogenic strains.
- Understanding the role of LRR proteins in Leptospira pathogenesis is essential.
Purpose of the Study:
- To investigate the biological mechanisms of an essential LRR domain protein (LRR20) from pathogenic Leptospira.
- To elucidate the role of LRR20 in host cell signaling pathways and kidney injury.
- To explore the interaction between Leptospira LRR20 and host cell surface proteins.
Main Methods:
- Microarray analysis
- Quantitative real-time polymerase chain reaction (qPCR)
- Western blotting
- Enzyme-linked immunosorbent assay (ELISA)
- Use of MMP7 inhibitors
Main Results:
- Recombinant LRR20 (rLRR20) colocalized with E-cadherin and activated β-catenin.
- rLRR20 upregulated MMP7, a kidney injury biomarker, which degraded surface E-cadherin.
- E-cadherin degradation activated the NF-κB pathway, leading to NGAL secretion.
- This feedback loop inhibited Leptospira colonization while inducing kidney injury.
Conclusions:
- Leptospira LRR20 induces kidney injury via MMP7 and NGAL upregulation.
- A crosstalk between E-cadherin/β-catenin and NF-κB pathways is involved in Leptospira infection.
- LRR20 plays a dual role in pathogenesis: inducing host cell damage and inhibiting bacterial adhesion.
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