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Updated: Apr 23, 2026

Biochemical and Structural Characterization of the Carbohydrate Transport Substrate-binding-protein SP0092
Published on: October 2, 2017
Molecular analysis of pbp2b in Streptococcus pneumonia isolated from clinical and normal flora samples
J Sadeghi1, A Ahamadi, M Douraghi
1Department of Microbiology, School of Medicine, Tehran University of Medical Sciences, Tehran, Iran, javad.sadeghi1@gmail.com.
Abstract:
Streptococcus pneumoniae is an important bacterial pathogen responsible for respiratory infections, bacteraemia, and meningitis remains an important cause of disease and mortality in infants and younger children around the world, with penicillin being considered the drug of choice for the treatment of infections. However, penicillin-resistant S. pneumonia is now becoming endemic worldwide. In this study, a total of 80 pneumococcal isolates were collected from different clinical sources as well as normal flora. These isolates were subjected to antimicrobial susceptibility testing and MIC determination. The penicillin-binding proteins, pbp2b, were amplified by PCR, and they were sequenced. The genetic relationship of the penicillin-resistant isolates was performed by BOX PCR. Overall, 36 pneumococcal (45 %) isolates were found to be resistant to penicillin with different MICs. The majority of them (80 %) were intermediately resistant with MIC of 0.12-1 µg/ml, whereas 20 % of isolates were penicillin resistant with MICs of >2 µg/ml. The results identified seven groups which were based on the amino acid substitutions of pbp2b. Sequencing analysis revealed that the most prevalent mutation was the substitution of Adenine for Thymine at the position 445 which is next to the second PBP2b-conserved motif (SSN). This study indicates that resistance to penicillin appears to be dependent on specific mutations in pbp2b, and the substitution in S620 → T near to the third PBP2b-conserved motif appears to be important in developing highly antibiotic-resistant isolates. Moreover, there was a positive correlation between the mutations in pbp2b gene and MIC.
Insights
Penicillin resistance in Streptococcus pneumoniae is increasing globally. Specific mutations in the pbp2b gene, particularly at position 445 and S620, are linked to this growing antibiotic resistance in pneumococcal isolates.
Area of Science:
- Microbiology
- Genetics
- Pharmacology
Background:
- Streptococcus pneumoniae causes severe infections globally, especially in children.
- Penicillin is the primary treatment, but resistance is a growing concern worldwide.
- Emergence of penicillin-resistant S. pneumoniae necessitates understanding resistance mechanisms.
Purpose of the Study:
- To investigate the genetic basis of penicillin resistance in Streptococcus pneumoniae.
- To identify specific mutations in the penicillin-binding protein 2b (pbp2b) gene associated with resistance.
- To correlate genetic mutations with antimicrobial susceptibility testing results.
Main Methods:
- Collected 80 pneumococcal isolates from clinical and normal flora sources.
- Performed antimicrobial susceptibility testing and Minimum Inhibitory Concentration (MIC) determination.
- Amplified and sequenced the pbp2b gene using PCR and sequencing; genetic relatedness assessed by BOX PCR.
Main Results:
- 45% of isolates (36/80) showed penicillin resistance, with varying MICs.
- 80% of resistant isolates had intermediate resistance (MIC 0.12-1 µg/ml), 20% were highly resistant (MIC >2 µg/ml).
- Identified seven groups based on pbp2b amino acid substitutions; a common mutation at position 445 (A→T) and S620→T were significant.
Conclusions:
- Penicillin resistance in S. pneumoniae is strongly associated with specific mutations in the pbp2b gene.
- Mutations near conserved motifs in pbp2b, like S620→T, are crucial for developing high-level antibiotic resistance.
- A direct correlation exists between pbp2b gene mutations and penicillin MIC values.
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