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Autoimmune diseases are dynamic, varied, and difficult to characterize using traditional clinical visits and static datasets. As drug developers rely on AI and biomarker-driven approaches to understand disease activity and therapeutic response, they face a fundamental limitation: most available data offers only isolated snapshots in time, missing the dynamic transitions that truly define immune-mediated conditions.
In this discussion, our speakers will explore how longitudinal, temporally relevant, multimodal data collected through direct connections with individuals can help unlock new opportunities across early R&D for immune-mediated diseases. Attendees will gain insights on how these data can be used to sharpen R&D confidence in early-phase programs and support AI-driven innovation in autoimmune drug development.
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