Multidrug-Resistant Klebsiella pneumoniae Strains in a Hospital: Phylogenetic Analysis to Investigate Local
Maria Vittoria Ristori1, Fabio Scarpa2, Daria Sanna2
1Operative Research Unit of Laboratory, Fondazione Policlinico Universitario Campus Bio-Medico, Via Alvaro del Portillo, 200, 00128 Rome, Italy.
Abstract:
Multidrug-resistant Klebsiella pneumoniae is a significant healthcare challenge that particularly affects vulnerable patients through opportunistic nosocomial infections. Surveillance is crucial for monitoring the prevalence of these infections. Eighty-four KPC K. pneumoniae strains (2019-2022) were collected from patients admitted in Fondazione Policlinico Universitario Campus Bio-Medico. Strains were identified by MALDI-TOF and tested for antimicrobial susceptibility, and gene amplification was performed to identify the different blaKPC variants. Phylogenetic reconstructions were carried out using Bayesian methods. Additionally, to create a Bayesian skyline plot (BSP), additional analyses were conducted, running a simulation of 100 million generations under a Bayesian skyline model along with the uncorrelated log-normal relaxed clock model. To identify potential subgroups within genetic clusters and evaluate genetic variability among sequences, principal coordinate analysis (PCoA) was performed. In total, 84 Klebsiella pneumoniae isolates were classified as multidrug-resistant (MDR), characterized by resistance to three or more antibiotic classes, including carbapenems, and testing positive for KPC gene presence, and were included in the study. The Bayesian evolutionary tree for K. pneumoniae showed strongly supported branches but no genetic structure related to sampling dates or hospital departments. Phylogenetic analysis revealing a 73-year evolutionary span of K. pneumoniae strains. PCoA analysis identified three genetic outliers from 2022 and one from 2021, indicating higher genetic distances. The Bayesian skyline plot revealed increased genetic variability peaking at the end of 2019, followed by stabilization from early 2020 onward, with no significant changes in genetic variability thereafter. Overall, the study found no genetic structure correlating with sampling date or hospital department, suggesting significant variability in pathogen introduction during the pandemic. The increase in multidrug-resistant K. pneumoniae was linked to the influx of severe COVID-19 cases, prolonged hospitalizations, and heightened broad-spectrum antibiotic use, which likely facilitated resistance development and transmission amidst altered infection control practices.
Insights
Multidrug-resistant Klebsiella pneumoniae strains showed no genetic structure linked to time or hospital department. Increased resistance was associated with COVID-19 cases, longer hospital stays, and increased antibiotic use.
Area of Science:
- Microbiology
- Epidemiology
- Genetics
Background:
- Multidrug-resistant Klebsiella pneumoniae (MDR-Kp) poses a significant threat, especially to vulnerable patients in healthcare settings.
- Effective surveillance is essential for understanding and controlling the spread of nosocomial infections caused by MDR-Kp.
Purpose of the Study:
- To investigate the genetic diversity and evolutionary dynamics of KPC-producing Klebsiella pneumoniae strains.
- To determine if there is a correlation between genetic structure, sampling dates, and hospital departments.
- To explore the impact of the COVID-19 pandemic on MDR-Kp transmission and resistance.
Main Methods:
- Collected 84 KPC-producing Klebsiella pneumoniae strains from 2019-2022.
- Identified strains using MALDI-TOF and performed antimicrobial susceptibility testing.
- Utilized gene amplification for blaKPC variants, Bayesian phylogenetic analysis, Bayesian skyline plot (BSP), and principal coordinate analysis (PCoA).
Main Results:
- No significant genetic structure was found correlating with sampling dates or hospital departments.
- Phylogenetic analysis indicated a 73-year evolutionary span for the K. pneumoniae strains.
- PCoA identified four genetic outliers (three from 2022, one from 2021).
- BSP showed increased genetic variability peaking in late 2019, stabilizing from early 2020 onwards.
- The rise in MDR-Kp was linked to increased severe COVID-19 cases, prolonged hospitalizations, and broad-spectrum antibiotic use.
Conclusions:
- Klebsiella pneumoniae evolution shows no clear temporal or spatial clustering within the study period.
- The COVID-19 pandemic likely influenced the transmission dynamics and resistance patterns of MDR-Kp.
- Altered infection control practices and increased antibiotic pressure during the pandemic may have facilitated resistance development and spread.
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