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Published on: July 24, 2021
Antimicrobial resistance in the next 30 years, humankind, bugs and drugs: a visionary approach
Matteo Bassetti1, Garyphallia Poulakou2, Etienne Ruppe3
1Department of Medicine, Infectious Diseases Clinic, University of Udine and Azienda Sanitaria Universitaria Integrata, Piazzale S. Maria Della Misericordia 15, 33100, Udine, Italy. mattba@tin.it.
Purpose:
To describe the current standards of care and major recent advances with regard to antimicrobial resistance (AMR) and to give a prospective overview for the next 30 years in this field.
Methods:
Review of medical literature and expert opinion were used in the development of this review.
Results:
There is undoubtedly a large clinical and public health burden associated with AMR in ICU, but it is challenging to quantify the associated excess morbidity and mortality. In the last decade, antibiotic stewardship and infection prevention and control have been unable to prevent the rapid spread of resistant Gram-negative bacteria (GNB), in particular carbapenem-resistant Pseudomonas aeruginosa (and other non-fermenting GNB), extended-spectrum β-lactamase (ESBL)-producing and carbapenem-resistant Enterobacteriaceae (CRE). The situation appears more optimistic currently for Gram-positive, where Staphylococcus aureus, and particularly methicillin-resistant S. aureus (MRSA), remains a cardinal cause of healthcare-associated infections worldwide. Recent advancements in laboratory techniques allow for a rapid identification of the infecting pathogen and antibiotic susceptibility testing. Their impact can be particularly relevant in settings with prevalence of MDR, since they may guide fine-tuning of empirically selected regimen, facilitate de-escalation of unnecessary antimicrobials, and support infection control decisions. Currently, antibiotics are the primary anti-infective solution for patients with known or suspected MDR bacteria in intensive care. Numerous incentives have been provided to encourage researchers to work on alternative strategies to reverse this trend and to provide a means to treat these pathogens. Although some promising antibiotics currently in phase 2 and 3 of development will soon be licensed and utilized in ICU, the continuous development of an alternative generation of compounds is extremely important. There are currently several promising avenues available to fight antibiotic resistance, such as faecal microbiota, and phage therapy.
Insights
Antimicrobial resistance (AMR) is a growing threat, especially from Gram-negative bacteria. New diagnostics and alternative therapies like phage therapy offer hope for future treatment of multidrug-resistant infections.
Area of Science:
- Infectious Diseases
- Microbiology
- Critical Care Medicine
Background:
- Antimicrobial resistance (AMR) poses a significant global health challenge, particularly in intensive care units (ICUs).
- The spread of resistant Gram-negative bacteria, including carbapenem-resistant strains, is a major concern.
- While Gram-positive resistance, like MRSA, remains an issue, advancements offer some optimism.
Purpose of the Study:
- To review current standards of care for antimicrobial resistance (AMR).
- To highlight recent advances in combating AMR.
- To provide a prospective outlook on AMR management over the next 30 years.
Main Methods:
- Comprehensive review of existing medical literature.
- Incorporation of expert opinion to inform the analysis.
Main Results:
- Rapid identification of pathogens and antibiotic susceptibility testing are improving treatment guidance.
- Antibiotic stewardship and infection control have struggled to curb the rise of resistant Gram-negative bacteria.
- Alternative strategies such as fecal microbiota transplantation and phage therapy are emerging as promising treatments.
Conclusions:
- Despite challenges, rapid diagnostics and novel therapies are crucial for managing multidrug-resistant infections.
- Continued research and development of new antimicrobial agents and alternative strategies are essential.
- A multi-faceted approach combining stewardship, diagnostics, and novel therapeutics is needed to combat AMR.
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