Related Experiment Video
Updated: May 30, 2026

Escherichia coli -Based Complementation Assay to Study the Chaperone Function of Heat Shock Protein 70
Published on: March 8, 2024
Role of Streptococcus intermedius DnaK chaperone system in stress tolerance and pathogenicity
Toshifumi Tomoyasu1, Atsushi Tabata, Hidenori Imaki
1Department of Biological Science and Technology, Institute of Technology and Science, The University of Tokushima Graduate School, 2 chome, Minami-josanjima, Tokushima 770-8506, Japan.
Abstract:
Streptococcus intermedius is a facultatively anaerobic, opportunistic pathogen that causes purulent infections and abscess formation. The DnaK chaperone system has been characterized in several pathogenic bacteria and seems to have important functions in stress resistance and pathogenicity. However, the role of DnaK in S. intermedius remains unclear. Therefore, we constructed a dnaK knockout mutant that exhibited slow growth, thermosensitivity, accumulation of GroEL in the cell, and reduced cytotoxicity to HepG2 cells. The level of secretion of a major pathogenic factor, intermedilysin, was not affected by dnaK mutation. We further examined the function and property of the S. intermedius DnaK chaperone system by using Escherichia coli ΔdnaK and ΔrpoH mutant strains. S. intermedius DnaK could not complement the thermosensitivity of E. coli ΔdnaK mutant. However, the intact S. intermedius DnaK chaperone system could complement the thermosensitivity and acid sensitivity of E. coli ΔdnaK mutant. The S. intermedius DnaK chaperone system could regulate the activity and stability of the heat shock transcription factor σ(32) in E. coli, although S. intermedius does not utilize σ(32) for heat shock transcription. The S. intermedius DnaK chaperone system was also able to efficiently eliminate the aggregated proteins from ΔrpoH mutant cells. Overall, our data showed that the S. intermedius DnaK chaperone system has important functions in quality control of cellular proteins but has less participation in the modulation of expression of pathogenic factors.
Insights
The Streptococcus intermedius DnaK chaperone system is crucial for cellular protein quality control, aiding in growth and stress resistance. However, it does not significantly impact the expression of key virulence factors like intermedilysin.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- Streptococcus intermedius is an opportunistic pathogen causing purulent infections.
- The DnaK chaperone system is vital for bacterial stress resistance and pathogenicity.
- The specific role of DnaK in S. intermedius was previously uncharacterized.
Purpose of the Study:
- To elucidate the function of the DnaK chaperone system in Streptococcus intermedius.
- To investigate the impact of DnaK on bacterial growth, stress response, and virulence.
- To compare the functional properties of S. intermedius DnaK with known bacterial chaperone systems.
Main Methods:
- Construction and characterization of a Streptococcus intermedius dnaK knockout mutant.
- Assessment of bacterial growth, thermosensitivity, and cytotoxicity.
- Complementation studies using Escherichia coli mutant strains (ΔdnaK and ΔrpoH).
- Analysis of protein aggregation and heat shock transcription factor regulation.
Main Results:
- The dnaK mutant showed impaired growth, thermosensitivity, GroEL accumulation, and reduced cytotoxicity.
- Intermedilysin secretion was unaffected by the dnaK mutation.
- S. intermedius DnaK complemented E. coli thermosensitivity and acid sensitivity.
- The S. intermedius DnaK system regulated E. coli σ(32) and cleared protein aggregates.
Conclusions:
- The S. intermedius DnaK chaperone system plays a significant role in cellular protein quality control.
- DnaK is essential for S. intermedius growth and stress tolerance.
- DnaK has a limited role in regulating the expression of virulence factors in S. intermedius.
Related Concept Videos
Other Stress Responses in Bacteria
Stringent Response in E. coli
Bacterial Protein Maturation
Regulation of Bacterial Virulence
Determinants of Bacterial Pathogenicity and Virulence
Gene Regulation During Sporulation
