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Characteristics of invasive Acinetobacter species isolates recovered in a pediatric academic center
Avish L Jain1, Christian M Harding1,2, Kaivon Assani1
1Center for Microbial Pathogenesis, The Research Institute at Nationwide Children's Hospital, Columbus, OH, USA.
Background:
Acinetobacter species are associated with increasing mortality due to emerging drug-resistance. Pediatric Acinetobacter infections are largely undefined in developed countries and clinical laboratory identification methods do not reliably differentiate between members of the Acinetobacter calcoaceticus-baumannii complex, leading to improper identification. Therefore we aimed to determine risk factors for invasive Acinetobacter infections within an academic, pediatric setting as well as defining microbiologic characteristics of predominant strains.
Methods:
Twenty-four invasive Acinetobacter isolates were collected from 2009-2013. Comparative sequence analysis of the rpoB gene was performed coupled with phenotypic characterization of antibiotic resistance, motility, biofilm production and clinical correlation.
Results:
Affected patients had a median age of 3.5 years, and 71 % had a central catheter infection source. rpoB gene sequencing revealed a predominance of A. pittii (45.8 %) and A. baumannii (33.3 %) strains. There was increasing incidence of A. pittii over the study. Two fatalities occurred in the A. pittii group. Seventeen percent of isolates were multi-drug resistant. A pittii and A. baumannii strains were similar in motility, but A pittii strains had significantly more biofilm production (P value = 0.018).
Conclusions:
A. pittii was the most isolated species highlighting the need for proper species identification. The isolated strains had limited acute mortality in children, but the occurrence of more multi-drug resistant strains in the future is a distinct possibility, justifying continued research and accurate species identification.
Insights
Acinetobacter pittii and Acinetobacter baumannii are key causes of invasive pediatric infections. Accurate identification is crucial, as A. pittii strains show increased biofilm production and potential for future drug resistance.
Area of Science:
- Microbiology
- Pediatric Infectious Diseases
- Antimicrobial Resistance
Background:
- Acinetobacter species are increasingly linked to mortality due to drug resistance.
- Pediatric Acinetobacter infections are poorly understood in developed nations.
- Current identification methods struggle to differentiate key species within the Acinetobacter calcoaceticus-baumannii complex.
Purpose of the Study:
- To identify risk factors for invasive Acinetobacter infections in a pediatric academic setting.
- To characterize the microbiological features of prevalent Acinetobacter strains.
- To address limitations in differentiating Acinetobacter species.
Main Methods:
- Analysis of 24 invasive Acinetobacter isolates from 2009-2013.
- rpoB gene sequencing for species identification.
- Phenotypic characterization including antibiotic resistance, motility, and biofilm production.
Main Results:
- Acinetobacter pittii (45.8%) and Acinetobacter baumannii (33.3%) were predominant species.
- A. pittii incidence increased during the study period.
- A. pittii strains exhibited significantly higher biofilm production compared to A. baumannii.
Conclusions:
- Acinetobacter pittii is a significant cause of pediatric invasive infections, necessitating precise species identification.
- While acute mortality was limited, the potential for increased multi-drug resistant strains warrants ongoing research and surveillance.
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