Related Experiment Video
Updated: Jul 25, 2025

Extraction and Visualization of Protein Aggregates after Treatment of Escherichia coli with a Proteotoxic Stressor
Published on: June 29, 2021
DnaK-Mediated Protein Deamidation: a Potential Mechanism for Virulence and Stress Adaptation in Cronobacter sakazakii
Ping Lu1,2,3, Juan Xue4, Xi Chen1,2,3
1Tianjin Key Laboratory of Ophthalmology and Visual Science, Tianjin Eye Institute, Tianjin Eye Hospital, Tianjin, China.
Insights
The dnaK gene is crucial for Cronobacter sakazakii virulence, affecting adhesion, invasion, and acid resistance. Disrupting dnaK increases protein deamidation, a potential new target for treating C. sakazakii infections.
Area of Science:
- Microbiology
- Molecular Biology
- Bacterial Pathogenesis
Background:
- Cronobacter sakazakii causes severe infections, especially in neonates.
- The dnaK gene's role in C. sakazakii virulence and stress adaptation requires further investigation.
Purpose of the Study:
- To explore the function of the dnaK gene in C. sakazakii.
- To understand how dnaK alterations impact protein composition, virulence, and stress adaptation.
Main Methods:
- Comparative proteomic analysis of wild-type and dnaK-deleted C. sakazakii strains.
- Assessment of key virulence factors including adhesion, invasion, and acid resistance.
Main Results:
- The dnaK gene is essential for C. sakazakii virulence, including adhesion, invasion, and acid resistance.
- dnaK deletion leads to increased protein abundance and deamidation.
- DnaK may regulate protein deamidation, impacting bacterial protein activity.
Conclusions:
- DnaK plays a critical role in C. sakazakii virulence and stress adaptation.
- DnaK-mediated protein deamidation represents a novel mechanism for virulence.
- Targeting DnaK is a potential therapeutic strategy for C. sakazakii infections.
Abstract:
Cronobacter sakazakii is a Gram-negative bacterium that causes infections in individuals of all ages, with neonates being the most vulnerable group. The objective of this study was to explore the function of the dnaK gene in C. sakazakii and to elucidate the impact of alterations in the protein composition regulated by dnaK on virulence and stress adaptation. Our research demonstrates the critical role of the dnaK gene in various key virulence factors, including adhesion, invasion, and acid resistance in C. sakazakii. Through the use of proteomic analysis, we discovered that deletion of the dnaK gene in C. sakazakii leads to an upregulation of protein abundance and increased levels of deamidated posttranscriptional modifications, suggesting that DnaK may play a role in maintaining proper protein activity by reducing protein deamidation in bacteria. These findings indicate that DnaK-mediated protein deamidation may be a novel mechanism for virulence and stress adaptation in C. sakazakii. These findings suggest that targeting DnaK could be a promising strategy for developing drugs to treat C. sakazakii infections. IMPORTANCE Cronobacter sakazakii can cause disease in individuals of all ages, with infections in premature infants being particularly deadly and resulting in bacterial meningitis and sepsis with a high mortality rate. Our study demonstrates that dnaK in Cronobacter sakazakii plays a critical role in virulence, adhesion, invasion, and acid resistance. Using proteomic analysis to compare protein changes in response to dnaK knockout, we found that dnaK knockout significantly upregulates the abundance of some proteins but also results in the deamidation of many proteins. Our research has identified a connection between molecular chaperones and protein deamidation, which suggests a potential future drug development strategy of targeting DnaK as a drug target.
More Related Videos
Related Concept Videos
Bacterial Protein Maturation
Other Stress Responses in Bacteria
Stringent Response in E. coli
CRISPR and crRNAs
The CRISPR-Cas system stores a copy of foreign DNA in the host genome and uses it to identify the foreign DNA upon reinfection. CRISPR-Cas has three different...
Diversity of Archaea III
Transduction

