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Mapping artificial intelligence adoption in hepatology practice and research: challenges and opportunities in MENA region

Title: Mapping artificial intelligence adoption in hepatology practice and research: challenges and opportunities in MENA region
Authors: El-Kassas, Mohamed; Khalifa, Rofida; Medhat, Mohammed A.; Yilmaz, Yusuf; Tumi, Ali; Labidi, Asma; Almattooq, Maen; Sanai, Faisal M.; Elbadry, Mohamed; Mohammed, Mohammed Omer; Mahdy, Mohamed Abdelhakim; Abdeen, Nermeen; Radwan, Hend; Abdelhamed, Walaa; Almaghrabi, Majed; Fared, Mai; Elzouki, Abdel-Naser; Alswat, Khalid A.; AlNaamani, Khalid M.
Source: Frontiers in Medicine ; volume 12 ; ISSN 2296-858X
Publisher Information: Frontiers Media SA
Publication Year: 2025
Collection: Frontiers (Publisher - via CrossRef)
Description: Background Artificial intelligence (AI) is increasingly relevant to hepatology, yet real-world adoption in the Middle East and North Africa (MENA) is uncertain. We assessed awareness, use, perceived value, barriers, and policy priorities among hepatology clinicians in the region. Methods A cross-sectional online survey targeted hepatologists and gastroenterologists across 17 MENA countries. The survey assessed clinical and research applications of AI, perceived benefits, clinical and research use, barriers, ethical considerations, and institutional readiness. Descriptive statistics and thematic analysis were performed. Results Of 285 invited professionals, 236 completed the survey (response rate: 82.8%). While 73.2% recognized the transformative potential of AI, only 14.4% used AI tools daily, primarily for imaging analysis and disease prediction. AI tools were used in research by 39.8% of respondents, mainly for data analysis, manuscript writing assistance, and predictive modeling. Major barriers included inadequate training (60.6%), limited AI tool access (53%), and insufficient infrastructure (53%). Ethical concerns focused on data privacy, diagnostic accuracy, and over-reliance on automation. Despite these challenges, 70.3% expressed strong interest in AI training., and 43.6% anticipating routine clinical integration within 1–3 years. Conclusion MENA hepatologists are optimistic about AI but report limited routine use and substantial readiness gaps. Priorities include scalable training, interoperable infrastructure and standards, clear governance with human-in-the-loop safeguards, and region-specific validation to enable safe, equitable implementation.
Document Type: article in journal/newspaper
Language: unknown
DOI: 10.3389/fmed.2025.1630831
DOI: 10.3389/fmed.2025.1630831/full
Availability: https://doi.org/10.3389/fmed.2025.1630831; https://www.frontiersin.org/articles/10.3389/fmed.2025.1630831/full
Rights: https://creativecommons.org/licenses/by/4.0/
Accession Number: edsbas.874DF2F9
Database: BASE