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Bacteriophages as a potential substitute for antibiotics: A comprehensive review.
Kushwaha, Shruti O; Sahu, Santosh Kumar; Yadav, Virendra Kumar; Rathod, Mayuri C; Patel, Dhaval; Sahoo, Dipak Kumar; Patel, Ashish.
Afiliação
  • Kushwaha SO; Department of Biotechnology, Veer Narmad South Gujarat University, Surat, Gujarat, India.
  • Sahu SK; Department of Life Sciences, Hemchandracharya North Gujarat University, Patan, Gujarat, India.
  • Yadav VK; Department of Life Sciences, Hemchandracharya North Gujarat University, Patan, Gujarat, India.
  • Rathod MC; Department of Biotechnology, Veer Narmad South Gujarat University, Surat, Gujarat, India.
  • Patel D; Bioinformatic Division, Gujarat Biotechnology University, Gandhinagar, Gujarat, India.
  • Sahoo DK; Department of Veterinary Clinical Sciences, College of Veterinary Medicine, Iowa State University, Ames, Iowa, USA.
  • Patel A; Department of Life Sciences, Hemchandracharya North Gujarat University, Patan, Gujarat, India.
Cell Biochem Funct ; 42(3): e4022, 2024 Apr.
Article em En | MEDLINE | ID: mdl-38655589
ABSTRACT
Over the years, the administration of antibiotics for the purpose of addressing bacterial infections has become increasingly challenging due to the increased prevalence of antimicrobial resistance exhibited by various strains of bacteria. Multidrug-resistant (MDR) bacterial species are rising due to the unavailability of novel antibiotics, leading to higher mortality rates. With these conditions, there is a need for alternatives in which phage therapy has made promising results. Phage-derived endolysins, phage cocktails, and bioengineered phages are effective and have antimicrobial properties against MDR and extensively drug-resistant strains. Despite these, it has been observed that phages can give antimicrobial activity to more than one bacterial species. Thus, phage cocktail against resistant strains provides broad spectrum treatment and magnitude of effectivity, which is many folds higher than antibiotics. Many commercially available endolysins such as Staphefekt SA.100, Exebacase (CF-301), and N-Rephasin®SAL200 are used in biofilm penetration and treating plant diseases. The role of CMP1 phage endolysin in transgenic tomato plants in preventing Clavibacter michiganensis infection and the effectiveness of phage in protecting Atlantic salmon from vibriosis have been reported. Furthermore, phage-derived endolysin therapy, such as TSPphg phage exogenous treatment, can aid in disrupting cell walls, leading to bacterial cell lysis. As animals in aquaculture and slaughterhouses are highly susceptible to bacterial infections, effective phage therapy instead of antibiotics can help treat poultry animals, preserve them, and facilitate disease-free trade. Using bioengineered phages and phage cocktails enhances the effectiveness by providing a broad spectrum of phages and target specificity. Research is currently being conducted on clinical trials to confirm the efficacy of engineered phages and phage cocktails in humans. Although obtaining commercial approval may be time-consuming, it will be beneficial in the postantibiotic era. This review provides an overview of the significance of phage therapy as a potential alternative to antibiotics in combating resistant bacterial strains and its application to various fields and emphasizes the importance of safeguarding and ensuring treatment efficacy.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Endopeptidases / Bacteriófagos / Terapia por Fagos / Antibacterianos Limite: Animals / Humans Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Endopeptidases / Bacteriófagos / Terapia por Fagos / Antibacterianos Limite: Animals / Humans Idioma: En Ano de publicação: 2024 Tipo de documento: Article