Antimicrobial Resistance in the Post-Antibiotic Era: Novel Mechanisms and Therapeutic Alternatives

Ifeoma Nwamaka Monago 1, *, Ikemefuna Nnamdi Onyeyili 2, Prince Mishael Mankwe 3, Chisom Cynthia Owoh 4, Idowu Temitope Orogbemi 5, Kabiru Olaleye Adisa 6 and Chizaram Anselm Onyeaghala 7

1 Department of Community Medicine and Primary Health Care, Faculty of Medicine, College of Health Sciences, Nnamdi Azikiwe University, Awka, Nigeria.
2 Department of Public Health, Ahmadu Bello University (ABU), Zaria, Nigeria.
3 Department of Pharmaceutical and Medicinal Chemistry, University of Port-Harcourt, Port-Harcourt, Nigeria.
4 Department of Medical Laboratory Science, University of Nigeria, Nsukka, Nigeria.
5 School of Public Health, University of Medical Sciences, Ondo, Ondo State, Nigeria.
6 Department of Chemistry, Olabisi Onabanjo University, Ago Iwoye, Nigeria.
7 Department of Internal Medicine, University of Port Harcourt Teaching Hospital, Port Harcourt, Nigeria.
 
Review
International Journal of Life Science Research Archive, 2026, 10(01), 046-063.
Article DOI: 10.53771/ijlsra.2026.10.1.0015
Publication history: 
Received on 14 December 2025; revised on 22 January 2026; accepted on 24 January 2026
 
Abstract: 
In an era where once-conquerable bacterial infections reclaim their lethality, antimicrobial resistance (AMR) stands as a silent yet relentless adversary, poised to eclipse cancer as a leading cause of death by mid-century if unchecked. This review delves into the intricate web of AMR's global toll, where millions succumb annually to resistant pathogens amid faltering surveillance systems riddled with gaps in low-resource regions, and traces its historical roots from the golden age of antibiotic discovery to today's innovation drought fueled by misuse and economic disincentives. Probing novel mechanisms, it unveils the cunning interplay of intrinsic barriers like reduced permeability and acquired adaptations such as efflux pumps that expel drugs with alarming efficiency, alongside genetic acrobatics through horizontal transfer via plasmids and integrons that accelerate evolutionary leaps in superbugs. Biofilms emerge as formidable fortresses, their extracellular matrices shielding persister cells and fostering tolerance up to a thousandfold greater than planktonic counterparts, perpetuating chronic afflictions from cystic fibrosis to device-associated infections while serving as environmental crucibles for resistance amplification. Extending beyond clinical confines, the analysis exposes wastewater plants, agricultural soils teeming with livestock manure, and aquatic systems as insidious reservoirs where antibiotic residues and pollutants co-select for resistance genes, propelling zoonotic spillovers through food chains and human interfaces under the shadow of climate-driven exacerbations. Yet, amid this grim panorama, innovative therapeutics ignite optimism: bacteriophage therapy, with its precision viral assaults yielding cures in over 70% of refractory cases through tailored cocktails; non-thermal plasma's reactive species dismantling biofilms and synergizing with legacy antibiotics; and vanguard approaches like membrane-piercing peptides, virulence-quelling agents, and nanomaterials that evade traditional resistance pitfalls. Navigating implementation hurdles from regulatory labyrinths to scalability demands, this synthesis calls for a unified One Health offensive bolstered surveillance, stewardship reforms, and interdisciplinary R&D to reclaim dominance over microbial foes and avert a regression to pre-antibiotic vulnerability.
 
Keywords: 
Antimicrobial Resistance; Post-Antibiotic Era; Efflux Pumps; Bacterial Biofilms; Phage Therapy; Non-Thermal Plasma; Environmental Reservoirs; One Health
 
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