Related Experiment Video
Updated: Sep 11, 2025

Oral Biofilm Formation on Different Materials for Dental Implants
Published on: June 24, 2018
Antimicrobial resistance and biofilm formation in implants related infections: Pathogens profiling and implants
Muhammad Bilal Habib1, Naseer Ali Shah1, Afreenish Amir2
1Department of Biosciences, COMSATS University Islamabad 44000 Pakistan.
Abstract:
Medical implant-associated infections are becoming increasingly hazardous because of the development of antimicrobial resistance (AMR). This study examined the burden of infectious medical implants (IMI), the possibility of biofilm generation, and the relationship between the type of implant material. A total of 135 infectious samples from medical implants were collected for this study. Matrix-assisted laser desorption Ionization time-of-flight (MALDI-TOF) was used to identify bacterial isolates. Disk diffusion and broth microdilution were used to test antimicrobial susceptibility, and biofilm potential was determined using a microtitre plate assay. The most prevalent pathogen was Acinetobacter baumannii (n=50, 37%), followed by Pseudomonas aeruginosa (n=42, 31.1%) and Escherichia coli (n=21, 15.6%). Antimicrobial susceptibility profiling showed MDR (n=89, 66%), XDR (n=13, 7%), PDR (n=2, 4%), and sensitive isolates (n=31,23%). The biofilm assay showed 66 (49%) strong, 46 (33%) moderate, and 23 (18%) weak biofilm producers, respectively. The strongest biofilms were found on the interlocking nails of the tibia and orthopaedic staples. A higher biofilm potential has been reported for stainless-steel implants. Binary logistic regression revealed that A. baumannii and stainless steel implants were significant predictors of strong biofilm formation. Similarly, E. coli and orthopedic staples were independently associated with multidrug resistance. Enterobacter hormaechie subsp. Oharae and Gemella haemolysans were reported first time in Pakistan among implants related infections. This study highlights the need for health professionals and policymakers to address concerns regarding implant-associated infections and alternative therapeutic strategies.
Insights
Medical implant infections are a growing threat due to antimicrobial resistance. This study found Acinetobacter baumannii and stainless steel implants strongly predict biofilm formation, highlighting the need for new treatments.
Area of Science:
- Medical Microbiology
- Infectious Diseases
- Biomaterials Science
Background:
- Antimicrobial resistance (AMR) is increasing the hazard of medical implant-associated infections (IMI).
- Understanding the prevalence of IMIs, biofilm formation, and implant material's role is crucial for effective treatment strategies.
Purpose of the Study:
- To investigate the burden of infectious medical implants.
- To assess the potential for biofilm generation on implants.
- To determine the relationship between implant material type and infection/biofilm formation.
Main Methods:
- Collected 135 infectious medical implant samples.
- Identified bacterial isolates using Matrix-assisted laser desorption Ionization time-of-flight (MALDI-TOF).
- Assessed antimicrobial susceptibility via disk diffusion and broth microdilution; determined biofilm potential using microtitre plate assays.
Main Results:
- Acinetobacter baumannii (37%), Pseudomonas aeruginosa (31.1%), and Escherichia coli (15.6%) were the most common pathogens.
- High rates of multidrug resistance (MDR, 66%), extensively drug-resistant (XDR, 7%), and pandrug-resistant (PDR, 4%) isolates were observed.
- Strong biofilm production was noted in 49% of cases, particularly on stainless steel interlocking nails and orthopaedic staples. A. baumannii and stainless steel were linked to strong biofilms, while E. coli and orthopaedic staples correlated with MDR.
Conclusions:
- Acinetobacter baumannii and stainless steel implants are significant predictors of strong biofilm formation.
- Escherichia coli and orthopaedic staples are associated with multidrug resistance.
- The study underscores the urgent need for improved strategies to combat implant-associated infections and AMR.
Related Concept Videos
Biofilms
Bacterial Signaling
Gene Regulation in Microbial Communities: Quorum Sensing

