Javascript must be enabled to continue!
Computational prediction of a phage cocktail active against multidrug-resistant bacteria
View through CrossRef
Background Antibiotic misuse and overuse have contributed to the emergence of multi-drug resistant (MDR) bacteria, posing a serious public health problem across the globe. Phage cocktails, which combine multiple phages, provide an efficient method to combat multidrug-resistant bacterial infections. This study integrated a computational pipeline to design a phage cocktail against the bacterial strains
Acinetobacter baumannii
AB0057
, Klebsiella pneumoniae
subsp. pneumoniae HS11286, and
Pseudomonas aeruginosa
UCBPP-PA14
.
Methods The whole genome sequences of selected multidrug-resistant bacteria were accessed. Prophage sequences were identified from them which could be expressed to produce viable lytic phages against MDR bacterial strains, thereby reducing the severity of infection. Prophages were annotated for open reading frames (ORFs), putative promoters, virulence factors, transcriptional terminators, ribosomal RNAs, and transfer RNAs. A dot plot was also generated to investigate similar phages and phylogenetic analysis was performed. Results A total of 11 prophages were predicted from the bacterial genomes. About 472 open reading frames were predicted along with 3 transfer RNAs. Additionally, the presence of 754 putative promoters and 281 transcription terminator sequences was also detected. Comparative genomic and phylogenetic analyses provided insight into the diversity, relatedness, and lytic potential of the phages. The final designed phage cocktail consisted of five selected prophages including
Acinetobacter baumannii
prophages (2759376-2809756) and (3311844-3364667), and
Klebsiella pneumoniae
prophages (1288317-1338719), (1778306-1808606), and (2280703-2325555). Conclusion The phage cocktail designed in this study might be useful against MDR
Acinetobacter baumannii
and
Klebsiella pneumoniae
infections, especially where conventional antibiotics fail. Sequence similarity analysis suggested that the phage cocktail may also be effective against other carbapenemase-producing
K. pneumoniae
strains.
Title: Computational prediction of a phage cocktail active against multidrug-resistant bacteria
Description:
Background Antibiotic misuse and overuse have contributed to the emergence of multi-drug resistant (MDR) bacteria, posing a serious public health problem across the globe.
Phage cocktails, which combine multiple phages, provide an efficient method to combat multidrug-resistant bacterial infections.
This study integrated a computational pipeline to design a phage cocktail against the bacterial strains
Acinetobacter baumannii
AB0057
, Klebsiella pneumoniae
subsp.
pneumoniae HS11286, and
Pseudomonas aeruginosa
UCBPP-PA14
.
Methods The whole genome sequences of selected multidrug-resistant bacteria were accessed.
Prophage sequences were identified from them which could be expressed to produce viable lytic phages against MDR bacterial strains, thereby reducing the severity of infection.
Prophages were annotated for open reading frames (ORFs), putative promoters, virulence factors, transcriptional terminators, ribosomal RNAs, and transfer RNAs.
A dot plot was also generated to investigate similar phages and phylogenetic analysis was performed.
Results A total of 11 prophages were predicted from the bacterial genomes.
About 472 open reading frames were predicted along with 3 transfer RNAs.
Additionally, the presence of 754 putative promoters and 281 transcription terminator sequences was also detected.
Comparative genomic and phylogenetic analyses provided insight into the diversity, relatedness, and lytic potential of the phages.
The final designed phage cocktail consisted of five selected prophages including
Acinetobacter baumannii
prophages (2759376-2809756) and (3311844-3364667), and
Klebsiella pneumoniae
prophages (1288317-1338719), (1778306-1808606), and (2280703-2325555).
Conclusion The phage cocktail designed in this study might be useful against MDR
Acinetobacter baumannii
and
Klebsiella pneumoniae
infections, especially where conventional antibiotics fail.
Sequence similarity analysis suggested that the phage cocktail may also be effective against other carbapenemase-producing
K.
pneumoniae
strains.
Related Results
Evolution of Antimicrobial Resistance in Community vs. Hospital-Acquired Infections
Evolution of Antimicrobial Resistance in Community vs. Hospital-Acquired Infections
Abstract
Introduction
Hospitals are high-risk environments for infections. Despite the global recognition of these pathogens, few studies compare microorganisms from community-acqu...
Successful Intratracheal Treatment of Phage and Antibiotic Combination Therapy of a Multi-Drug Resistant Pseudomonas aeruginosa Murine Model
Successful Intratracheal Treatment of Phage and Antibiotic Combination Therapy of a Multi-Drug Resistant Pseudomonas aeruginosa Murine Model
Background: Pseudomonas aeruginosa (PsA) is a common etiology of bacteria-mediated lower respiratory tract infections, including pneumonia, hospital acquired pneumonia (HAP), and v...
Time to lysis determines phage sensitivity to a cytidine deaminase toxin/antitoxin bacterial defense system
Time to lysis determines phage sensitivity to a cytidine deaminase toxin/antitoxin bacterial defense system
ABSTRACT
Toxin-antitoxin (TA) systems are ubiquitous two-gene loci that bacteria use to regulate cellular processes such as phage defense. Here, ...
Horizontal gene transfer and CRISPR targeting drive phage-bacterial host interactions and coevolution in pink berry marine microbial aggregates
Horizontal gene transfer and CRISPR targeting drive phage-bacterial host interactions and coevolution in pink berry marine microbial aggregates
ABSTRACT
Bacteriophages (phages), viruses that infect bacteria, are the most abundant components of microbial communities and play roles in commu...
Past and Future of Phage Therapy and Phage-Derived Proteins in Patients with Bone and Joint Infection
Past and Future of Phage Therapy and Phage-Derived Proteins in Patients with Bone and Joint Infection
Phage-derived therapies comprise phage therapy and the use of phage-derived proteins as anti-bacterial therapy. Bacteriophages are natural viruses that target specific bacteria. Th...
The Synergistic Antibacterial Effect of Topical Phage Cocktail and Gentamicin on the Healing Process of Infectious Wounds by <i>Klebsiella pneumoniae</i> in Wistar Rats Model
The Synergistic Antibacterial Effect of Topical Phage Cocktail and Gentamicin on the Healing Process of Infectious Wounds by <i>Klebsiella pneumoniae</i> in Wistar Rats Model
Background: Infections caused by drug-resistant Klebsiella pneumoniae represent a significant and growing global problem. Bacteriophages are viruses that target specific bacteria a...
Phage infection reinstates antibiotic sensitivity in MDR Pseudomonas aeruginosa
Phage infection reinstates antibiotic sensitivity in MDR Pseudomonas aeruginosa
The emergence of antibiotic resistance among bacterial pathogens is a significant public health threat affecting humans worldwide. In Europe, Pseudomonas aeruginosa contributes to ...
Challenging Management of Postoperative Empyema: A Case Report with Literature Review
Challenging Management of Postoperative Empyema: A Case Report with Literature Review
Abstract
Introduction: Pleural empyema is the collection of pus within the pleural cavity, typically arising as a complication of pneumonia, chest trauma, thoracic surgery, or bact...

