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AI-Generated Antibiotic Therapies for Acute Periprosthetic Joint Infections with Implant Retention in Comparison with
Alberto Alfieri Zellner1, Tamaradoubra Tippa Tuburu1, Alexander Franz1,2
1Department of Orthopedics and Trauma Surgery, University Hospital Bonn, 53127 Bonn, Germany.
Abstract:
Background: Periprosthetic joint infections (PJI) represent a serious complication following joint arthroplasty and require, in addition to surgical intervention, a targeted antibiotic therapy. The aim of this study was to compare microbiological recommendations for the antibiotic treatment of fictitious PJI patients generated by an artificial intelligence (AI) system with those of an interdisciplinary team (IT) consisting of microbiologists and orthopedic surgeons. The differences between the recommendations suggested by AI and the IT were analyzed with regard to the suggested agents and duration of antibiotic therapy. Methods: Based on meta-analyses, a cohort of 100 fictitious patients with acute early- and acute late-onset PJI was created, reflecting the typical demographic data, comorbidities and pathogen profiles of such a population. This information was input into the AI system ChatGPT (OpenAI, GPT-5 "Thinking mode" accessed via ChatGPT Plus, San Francisco, CA, USA) to generate corresponding recommendations. The objective was to use these profiles to obtain recommendations for definitive antibiotic therapy, including daily dosage, intravenous and oral treatment durations. Simultaneously, the same fictitious patient data were reviewed by the IT to produce their own recommendations. Results: The results revealed both concordances and discrepancies in the selection of antibiotics. Notably, in cases involving multidrug-resistant organisms and more complex clinical scenarios, the AI-generated recommendations were incongruent with those of the IT, with estimated percentage agreement ranging from 0-33%. In straightforward clinical scenarios with monomicrobial infections, AI reached an estimated percentage agreement of up to 57% (95%-CI [0.47-0.67]). Furthermore, AI consistently recommended 12 weeks of therapy duration vs. six weeks usually recommended by the IT. Conclusions: The study provides important insights into the potential and limitations of AI-assisted decision-making models in orthopedic infection treatments. Consultation of AI is universally accessible at all times of day, which may offer a significant advantage in the future for the treatment of PJI. This kind of application will be of particular interest for institutions without in-house microbiology services. However, from our perspective, the current level of incongruence between the AI-generated recommendations and those of an experienced interdisciplinary team remains too high for this approach to be clinically implemented at this time. Furthermore, AI lacks transparency regarding the sources it uses to inform about its decision-making and therapeutic recommendations, currently carries no legal weight and clinical implementation is severely hindered by restrictive privacy laws regarding health care data.
Insights
Artificial intelligence (AI) shows potential for antibiotic recommendations in periprosthetic joint infections (PJI), but current discrepancies with expert teams limit clinical use. Further development is needed for safe AI integration in orthopedic infection treatment.
Area of Science:
- Orthopedics
- Infectious Diseases
- Medical Informatics
Background:
- Periprosthetic joint infections (PJI) are severe complications of joint arthroplasty.
- Effective management requires surgical intervention and targeted antibiotic therapy.
- AI tools are being explored to aid in treatment recommendations.
Purpose of the Study:
- To compare AI-generated antibiotic treatment recommendations for PJI with those from an interdisciplinary team (IT) of experts.
- To analyze discrepancies in antibiotic agents and therapy duration between AI and IT.
- To assess the clinical viability of AI in orthopedic infection management.
Main Methods:
- A cohort of 100 fictitious PJI patients was created based on meta-analyses.
- AI (ChatGPT) generated treatment recommendations for these cases.
- An interdisciplinary team (microbiologists and orthopedic surgeons) independently provided recommendations.
- Comparison focused on antibiotic choice, dosage, and treatment duration.
Main Results:
- AI and IT recommendations showed agreement in simpler cases (up to 57%) but significant discrepancies in complex scenarios (0-33%) involving multidrug-resistant organisms.
- AI consistently recommended 12 weeks of therapy, while IT typically suggested six weeks.
- AI recommendations lacked transparency and legal standing.
Conclusions:
- AI offers accessible, 24/7 consultation potential for PJI treatment, especially for institutions lacking microbiology services.
- Current AI-generated recommendations exhibit too many incongruences with expert teams for immediate clinical implementation.
- Transparency, legal validation, and data privacy are critical barriers to AI adoption in orthopedic infection therapy.
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