A Review of the Resistance Mechanisms for β-Lactams, Macrolides and Fluoroquinolones among Streptococcus pneumoniae

肺炎链球菌 抗生素耐药性 抗生素 流出 微生物学 肺炎球菌感染 抗药性 肺炎 抗菌剂 生物 医学 重症监护医学 遗传学 内科学
作者
Nurul Izzaty Najwa Zahari,Engku Nur Syafirah Engku Abd Rahman,Ahmad Adebayo Irekeola,Naveed Ahmed,Ali A. Rabaan,Jawaher Alotaibi,Shayea A. Alqahtani,Mohammed Y. Halawi,Ibrahim Alamri,Mohammed S. Al-Mogbel,Amal H. Alfaraj,Fatimah Al Ibrahim,Manar Almaghaslah,Mohammed Alissa,Chan Yean Yean
出处
期刊:Medicina-lithuania [Multidisciplinary Digital Publishing Institute]
卷期号:59 (11): 1927-1927 被引量:13
标识
DOI:10.3390/medicina59111927
摘要

Streptococcus pneumoniae (S. pneumoniae) is a bacterial species often associated with the occurrence of community-acquired pneumonia (CAP). CAP refers to a specific kind of pneumonia that occurs in individuals who acquire the infection outside of a healthcare setting. It represents the leading cause of both death and morbidity on a global scale. Moreover, the declaration of S. pneumoniae as one of the 12 leading pathogens was made by the World Health Organization (WHO) in 2017. Antibiotics like β-lactams, macrolides, and fluoroquinolones are the primary classes of antimicrobial medicines used for the treatment of S. pneumoniae infections. Nevertheless, the efficacy of these antibiotics is diminishing as a result of the establishment of resistance in S. pneumoniae against these antimicrobial agents. In 2019, the WHO declared that antibiotic resistance was among the top 10 hazards to worldwide health. It is believed that penicillin-binding protein genetic alteration causes β-lactam antibiotic resistance. Ribosomal target site alterations and active efflux pumps cause macrolide resistance. Numerous factors, including the accumulation of mutations, enhanced efflux mechanisms, and plasmid gene acquisition, cause fluoroquinolone resistance. Furthermore, despite the advancements in pneumococcal vaccinations and artificial intelligence (AI), it is not feasible for individuals to rely on them indefinitely. The ongoing development of AI for combating antimicrobial resistance necessitates more research and development efforts. A few strategies can be performed to curb this resistance issue, including providing educational initiatives and guidelines, conducting surveillance, and establishing new antibiotics targeting another part of the bacteria. Hence, understanding the resistance mechanism of S. pneumoniae may aid researchers in developing a more efficacious antibiotic in future endeavors.
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