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June 4, 2026International Journal of Molecular Sciences0 citationsOpen Access

Redefining Antimicrobial Resistance in Acinetobacter baumannii: A Mechanistic Framework Linking Intracellular Antibiotic Activity to Treatment Failure

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AEAyman ElbehiryAAAdil AbalkhailSASaad A. Alotaibi

Key Points

  • The aim is to redefine antimicrobial resistance in Acinetobacter baumannii by integrating various resistance mechanisms within a unified framework.
  • Narrative review synthesizing existing literature on antimicrobial resistance mechanisms in A. baumannii.
  • Integration of molecular resistance mechanisms, bacterial physiology, and infection environment factors.
  • Evaluation of therapeutic strategies based on bacterial behavior and drug access.
  • Resistance is redefined as a treatment-associated phenotype influenced by bacterial physiology and environmental factors.
  • Antimicrobial failure arises from impaired drug exposure and adaptive responses of bacteria, explaining discrepancies between lab results and clinical outcomes.
  • Key gaps identified include the need for improved experimental models representing infection environments and better integration of pharmacokinetics with bacterial physiology.

Abstract

Acinetobacter baumannii (A. baumannii) is a major cause of multidrug-resistant infections, yet resistance is often interpreted from a gene-centered perspective that does not explain inconsistent treatment outcomes. This narrative review redefines resistance as a treatment-associated phenotype arising from interactions among molecular resistance mechanisms, bacterial physiology, and the infection environment. Unlike previous reviews that examine determinants in isolation, this work integrates efflux, permeability, enzymatic activity, and target modification with phenotypic states such as structured growth, metabolic adaptation, and stress response within a unified framework. Within this framework, bacterial elimination depends on whether antibiotics maintain sufficient target engagement under infection conditions. Antibiotic performance varies with local environment, population diversity, and cellular activity, which explains the gap between laboratory susceptibility results and clinical response. Antimicrobial failure therefore results from the combined effects of impaired drug exposure, adaptive bacterial physiology, and resistance mechanisms within the infection environment. Based on this framework, therapeutic strategies are reconsidered with emphasis on enhancing drug access, modulating cellular behavior, and disrupting population structures that sustain persistence. The review also highlights key gaps, including limited representation of infection environments in experimental models, insufficient resolution of population diversity, and weak integration between pharmacokinetics and bacterial physiology. This framework supports a mechanistic interpretation of resistance and therapeutic response in A. baumannii.

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Cite This Study

Elbehiry et al. (2026) studied this question.

synapsesocial.com/papers/6a2117bfd499ed480b170891https://doi.org/10.3390/ijms27114911
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