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April 23, 2026Diagnostics0 citationsOpen Access

Point-of-Care Diagnostic Technologies for Antimicrobial Resistance: Principles, Platforms, Clinical Impact, and Future Directions

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NMNahed N. MahrousMFMohannad M. FallatahRFRawan A. Fitaihi

Key Points

  • This review aims to evaluate current and emerging point-of-care diagnostic technologies for antimicrobial resistance.
  • Review of existing literature on point-of-care diagnostic technologies.
  • Discussion of technological platforms including phenotypic, genotypic, and biosensor-based diagnostics.
  • Analysis of the impact on antimicrobial stewardship and patient outcomes in various clinical settings.
  • Rapid phenotypic antimicrobial susceptibility testing and microfluidics show significant promise in clinical applications.
  • CRISPR-based diagnostics and integrated biosensor systems have great potential for near-term implementation.
  • Challenges remain in clinical validation, cost, and integration with existing workflows.

Abstract

Antimicrobial resistance (AMR) is an ever-growing threat to global healthcare. It is largely driven by delayed or inadequate pathogen identification and antimicrobial susceptibility testing in routine clinical workflows. By the time the clinician receives results to guide treatment from traditional culture-based diagnostics, several days may have elapsed, leading to the use and potential over-prescription of broad-spectrum antibiotics and the development of resistant pathogens. A rapid and clinically actionable diagnostic approach at the clinical point of care (POC) may help address this gap. This review examines current and emerging POC diagnostic technologies for AMR and outlines the fundamental principles and mechanistic classifications of POC diagnostic technologies. These include phenotypic, genotypic, immunological, and biosensor-based approaches. A critical overview of key technological platforms, including rapid phenotypic antimicrobial susceptibility testing (AST), microfluidics and isothermal nucleic acid amplification (e.g., LAMP and RPA), CRISPR-based diagnostics, nanomaterial-enhanced biosensors, and mobile-integrated systems is provided. The impact of POC diagnostics on antimicrobial stewardship, time to appropriate therapy, and patient outcomes in primary care settings, hospitals, intensive care units, and resource-limited settings is presented and discussed. In addition to clinical implementation challenges, this review considers the issues of analytical performance, workflow, regulatory pathways, cost, and implementation readiness. In addition, it outlines key trends regarding digital integration, surveillance, workforce training, and policy frameworks. Overall, the review outlines the role of POC diagnostics in enhancing antimicrobial response surveillance and the global fight against AMR. Among emerging platforms, rapid phenotypic AST, microfluidic and isothermal-based assays, CRISPR-based diagnostics, and integrated biosensor systems show the greatest potential for near-term clinical impact; however, widespread implementation remains constrained by challenges related to clinical validation, cost, workflow integration, and alignment with antimicrobial stewardship frameworks.

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Cite This Study

Mahrous et al. (2026) studied this question.

synapsesocial.com/papers/69e9b85585696592c86eba78https://doi.org/10.3390/diagnostics16081239
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