Related Experiment Video
Updated: May 12, 2026

Microtiter Dish Biofilm Formation Assay
Published on: January 30, 2011
Biofilm formation by Staphylococcus capitis strains isolated from contaminated platelet concentrates
Valerie S Greco-Stewart1, Hamza Ali1, Dilini Kumaran1
1Canadian Blood Services, Ottawa, Ontario, Canada.
Abstract:
Bacterial contamination of platelet concentrates (PCs) poses the greatest infectious risk in modern transfusion medicine despite the implementation of measures such as improved skin disinfection and first aliquot diversion. The majority of PC contaminants are commensal skin flora introduced by venipuncture at the time of blood collection. The predominant organisms are Gram-positive coagulase-negative staphylococci such as Staphylococcus capitis. This bacterium has been implicated in numerous instances of infection and sepsis, likely for its ability to form surface-associated communities of micro-organisms encased in extracellular materials, known as biofilms. In the present study, five strains of S. capitis isolated from contaminated PCs were assessed for their ability to produce extracellular polysaccharide (slime), a canonical indicator of biofilm-formation ability, on Congo red agar plates. Biofilm formation was evaluated in both glucose-enriched trypticase soy broth (TSBg) and in PCs by using a crystal violet staining assay. The chemical nature of the biofilms was evaluated by disruption assays using sodium metaperiodate and proteinase K. In addition, biofilm architecture was observed by scanning electron microscopy. The presence of the biofilm-associated icaR and icaADBC genes was also examined by PCR. While only two out of the five S. capitis strains formed biofilms in TSBg, all strains formed biofilms in PCs. The ability of strains to produce extracellular polysaccharide and their possession of wild-type ica genes were not exclusive predictors of biofilm formation in TSBg or PCs; different profiles of biofilm markers were observed among isolates. This is likely due to the proteinaceous composition of the S. capitis biofilm matrix. Interestingly, an ica-negative, non-slime-producing isolate was capable of biofilm formation in PCs. Together, these data indicate that the platelet storage environment stimulates biofilm formation in S. capitis in the absence of extracellular polysaccharide production and that multiple bacterial factors and regulatory elements are likely involved in biofilm formation in this milieu.
Insights
Platelet concentrate contamination by Staphylococcus capitis is a risk. This study shows S. capitis forms biofilms in platelets, even without typical biofilm markers, highlighting risks in transfusion medicine.
Area of Science:
- Transfusion Medicine
- Microbiology
- Bacterial Pathogenesis
Background:
- Bacterial contamination of platelet concentrates (PCs) is a significant infectious risk in transfusion medicine.
- Commensal skin flora, particularly Staphylococcus capitis, are common contaminants introduced during blood collection.
- Staphylococcus capitis can form biofilms, contributing to infections and sepsis.
Purpose of the Study:
- To investigate the biofilm-forming capabilities of Staphylococcus capitis strains isolated from contaminated platelet concentrates.
- To assess the influence of the platelet storage environment on biofilm formation.
- To identify bacterial factors and regulatory elements involved in S. capitis biofilm formation in PCs.
Main Methods:
- Assessed extracellular polysaccharide (slime) production on Congo red agar.
- Evaluated biofilm formation in trypticase soy broth and PCs using crystal violet staining.
- Analyzed biofilm chemical composition and architecture via disruption assays and scanning electron microscopy.
- Examined biofilm-associated genes (icaR, icaADBC) using PCR.
Main Results:
- Only two of five S. capitis strains formed biofilms in standard broth, but all formed biofilms in PCs.
- Extracellular polysaccharide production and presence of wild-type ica genes did not consistently predict biofilm formation.
- An isolate lacking ica genes and slime production still formed biofilms in PCs.
- Biofilm matrix composition appears to be proteinaceous, influencing formation.
Conclusions:
- The platelet storage environment actively promotes Staphylococcus capitis biofilm formation.
- Biofilm formation in PCs can occur independently of extracellular polysaccharide production.
- Multiple bacterial factors and regulatory mechanisms contribute to S. capitis biofilm formation in the platelet milieu.
- Findings underscore the persistent risk of S. capitis contamination in platelet transfusion therapy.
Related Concept Videos
Biofilms
Staphylococcal Skin Infections