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Agentic AI for scaling diagnosis and care in neurodegenerative disease.

Created on 31 Jul 2026

Authors

Andrew G Breithaupt, Michael Weiner, Alice Tang, Katherine L Possin, Marina Sirota, James Lah, Allan I Levey, Pascal Van Hentenryck, Reza Zandehshahvar, Marilu Luisa Gorno-Tempini, Joseph Giorgio, Jingshen Wang, Andreas M Rauschecker, Howard J Rosen, Rachel L Nosheny, Bruce L Miller, Pedro Pinheiro-Chagas

Published in

Nature aging. Jul 30, 2026. Epub Jul 30, 2026.

Abstract

US healthcare systems are struggling to meet the growing demand for neurological care, particularly in Alzheimer's disease and related dementias. Generative artificial intelligence (AI) built on large language models now enables agentic AI systems that can streamline clinical workflows, integrate multimodal data and learn from practicing specialists. We envision an agentic AI system that scales specialist-level care to nonspecialist clinical settings through a continuously learning healthcare system. We describe this destination and outline a phased roadmap for responsible design and integration into care of Alzheimer's disease and related dementias: (1) high-quality standardized data collection across modalities; (2) decision support; (3) clinical integration enhancing workflows; (4) rigorous validation and monitoring protocols; (5) continuous learning through clinical feedback; and (6) robust ethics and risk management frameworks. This human-centered approach optimizes clinicians' capabilities in comprehensive data collection, interpretation of complex clinical information and timely application of relevant medical knowledge while prioritizing patient safety, healthcare equity and transparency.

PMID:
42533108
Bibliographic data and abstract were imported from PubMed on 31 Jul 2026.

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