Department of Microbiology, Faculty of Medicine, Chulalongkorn University, Rama VI Road, Bangkok, 10330, Thailand.
Antimicrobial Resistance and Stewardship Research Unit, Faculty of Medicine, Chulalongkorn University, Rama VI Road, Bangkok, 10330, Thailand.
Sci Rep. 2022 Jan 7;12(1):230. doi: 10.1038/s41598-021-04303-7.
The carbapenem-resistant Acinetobacter calcoaceticus-baumannii (ACB) complex has become an urgent threat worldwide. Here, we determined antibiotic combinations and the feasible synergistic mechanisms against three couples of ACB (A. baumannii (AB250 and A10), A. pittii (AP1 and AP23), and A. nosocomialis (AN4 and AN12)). Imipenem with fosfomycin, the most effective in the time-killing assay, exhibited synergism to all strains except AB250. MurA, a fosfomycin target encoding the first enzyme in the de novo cell wall synthesis, was observed with the wild-type form in all isolates. Fosfomycin did not upregulate murA, indicating the MurA-independent pathway (cell wall recycling) presenting in all strains. Fosfomycin more upregulated the recycling route in synergistic strain (A10) than non-synergistic strain (AB250). Imipenem in the combination dramatically downregulated the recycling route in A10 but not in AB250, demonstrating the additional effect of imipenem on the recycling route, possibly resulting in synergism by the agitation of cell wall metabolism. Moreover, heteroresistance to imipenem was observed in only AB250. Our results indicate that unexpected activity of imipenem on the active cell wall recycling concurrently with the presence of heteroresistance subpopulation to imipenem may lead to the synergism of imipenem and fosfomycin against the ACB isolates.
耐碳青霉烯鲍曼不动杆菌(ACB)复合体已成为全球范围内的紧急威胁。在这里,我们确定了针对三对 ACB(鲍曼不动杆菌(AB250 和 A10)、皮氏不动杆菌(AP1 和 AP23)和琼氏不动杆菌(AN4 和 AN12))的抗生素组合和可行的协同作用机制。在时间杀伤试验中,最有效的抗生素组合是亚胺培南联合磷霉素,除 AB250 外,对所有菌株均表现出协同作用。磷霉素的靶标 MurA 编码从头细胞壁合成的第一酶,在所有分离株中均观察到野生型。磷霉素没有上调 murA,表明所有菌株均存在 MurA 非依赖性途径(细胞壁回收)。磷霉素在协同菌株(A10)中比非协同菌株(AB250)更能上调回收途径。联合用药中的亚胺培南显著下调了 A10 中的回收途径,但在 AB250 中没有,这表明亚胺培南对回收途径有额外的作用,可能通过搅动细胞壁代谢而产生协同作用。此外,仅在 AB250 中观察到对亚胺培南的异质性耐药。我们的结果表明,亚胺培南对活性细胞壁回收的意外作用以及对亚胺培南存在异质性耐药亚群可能导致亚胺培南和磷霉素对 ACB 分离株的协同作用。