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Updated: Sep 1, 2025

High-throughput Identification of Bacteria Repellent Polymers for Medical Devices
Published on: November 5, 2016
Phenol-soluble modulin contributes to the dispersal of Staphylococcus epidermidis isolates from catheters
Yixin Jin1, Qichen Wang1, Haomin Zhang1
1Department of Laboratory Medicine, Renji Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai, China.
Abstract:
Staphylococcus epidermidis (S. epidermidis), a human commensal, has been implicated in invasive infection in humans due to their ability to form biofilm. It is assumed that when a biofilm is dispersed it will subsequently cause a more severe infection. The clinical significance of S. epidermidis isolated from sterile body fluid (BF) remains unclear, and might be related to dispersal from catheter-associated biofilm infection. To evaluate this relationship, we evaluated S. epidermidis isolates from catheters (CA) or BF in hospitalized patients. Sequence type 2 (ST2) is the most prevalent type isolated from infection sites. Although the specific STs were also observed in isolates from different sites, we observed that the main sequence type was ST2, followed by ST59, among all the 114 isolates from different infection sites. Interestingly, ST2 strains isolated from BF exhibited significantly thicker biofilm than those from CA. The thicker biofilm was due to the higher expression of accumulation-associated protein (aap) but not intercellular adhesion (ica) operon. Moreover, the transcription of PSMδ and PSMε were significantly increased in ST2 strains isolated from BF. Although the bacterial loads on catheters were similar infected by CA- or BF-originated strains in mouse biofilm-associated infection model, we observed a higher CFU in peri-catheter tissues infected by ST2 clones isolated from BF, suggesting that S. epidermidis with thicker biofilm formation might be able to disperse. Taken together, our data suggested that S. epidermidis originated from diverse infection sites exhibited different biofilm forming capacity. The major ST2 clone isolated from BF exhibited thicker biofilm by increasing the expression of Aap. The higher expression of PSM of these strains may contribute to bacteria dispersal from biofilm and the following bacterial spread.
Insights
Staphylococcus epidermidis from body fluid forms thicker biofilms than from catheters, driven by increased Aap and PSM expression. This suggests enhanced dispersal and spread, potentially leading to more severe infections.
Area of Science:
- Microbiology
- Infectious Diseases
- Biofilm Formation
Background:
- Staphylococcus epidermidis is a common human commensal bacteria.
- S. epidermidis can cause invasive infections by forming biofilms.
- The role of S. epidermidis from sterile body fluid in infection is unclear.
Purpose of the Study:
- To investigate the relationship between S. epidermidis isolated from catheters (CA) and sterile body fluid (BF).
- To evaluate the biofilm-forming capacity and genetic characteristics of S. epidermidis from different infection sources.
Main Methods:
- Analysis of 114 S. epidermidis isolates from CA and BF.
- Comparison of biofilm thickness, gene expression (aap, ica, PSMδ, PSMε), and sequence types (STs).
- Evaluation in a mouse biofilm-associated infection model.
Main Results:
- Sequence type 2 (ST2) was the predominant type.
- ST2 strains from BF showed significantly thicker biofilms than those from CA.
- Thicker biofilms were linked to higher expression of accumulation-associated protein (aap) and increased transcription of PSMδ and PSMε.
- Infection with BF-originated ST2 strains led to higher bacterial loads in peri-catheter tissues.
Conclusions:
- S. epidermidis from different infection sites exhibit varying biofilm-forming capacities.
- The ST2 clone from BF forms thicker biofilms due to increased Aap expression.
- Elevated PSM expression in BF strains may promote biofilm dispersal and subsequent spread, potentially worsening infection severity.
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