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Wagner, V. P.

Publications and source records attributed to Wagner, V. P..

2 recordsLinked to original sources

ROSMAP-Compass: A data-harmonised, AI-ready atlas of 22 million single nuclei from the ROSMAP cohort

The Religious Orders Study and Memory and Aging Project (ROSMAP) cohort has generated the worlds most comprehensive single-cell transcriptomic resource for Alzheimers disease research. Naturally, in a project spanning multiple years with dozens of research groups involved, the resulting data landscape shows fragmentation across sequencing chemistries, protocols, and pipelines. This presents both a challenge and a unique opportunity for harmonized, collaborative analysis. Following an early data integration strategy and complete realignment of all single nucleus RNA sequencing data, we generated a fully harmonized resource: ROSMAP-Compass, comprising more than 22 million high-quality nuclei from 2,058 donors in multiple brain regions from the ROSMAP and Neuro Psychiatric Symptoms (NPS-AD) cohorts. Through systematic curation and unified reprocessing, we addressed substantial technical challenges including chemistry-specific biases, cross-study batch effects, and sample redundancies across multiple studies spanning different time periods and research groups. ROSMAP-Compass demonstrates the critical importance of systematic data harmonization when integrating large-scale single-cell datasets from multiple sources. By combining open science principles with cutting-edge AI integration, we provide both a critical resource for understanding Alzheimers disease heterogeneity and a blueprint for making complex biomedical data accessible to the global research community. The full resource, interactive web portal, and LLM compatible API are freely available, empowering researchers worldwide to accelerate discovery in neurodegenerative diseases.

neuroscience↗

Synaptic proteins that aggregate and degrade slower with aging accumulate in microglia

Neurodegenerative diseases affect 1 in 12 people globally and remain incurable. Central to their pathogenesis is a loss of neuronal protein maintenance and the accumulation of protein aggregates with aging1,2. We engineered bioorthogonal tools3 which allowed us to tag the nascent neuronal proteome and study its turnover with aging, its propensity to aggregate, and its interaction with microglia. We discovered neuronal proteins degraded on average twice as slowly between 4- and 24-month-old mice with individual protein stability differing between brain regions. Further, we describe the aged neuronal aggregome encompassing 574 proteins, nearly 30% of which showed reduced degradation. The aggregome includes well-known proteins linked to disease as well as a trove of proteins previously not associated with neurodegeneration. Unexpectedly, we found 274 neuronal proteins accumulated in microglia with 65% also displaying reduced degradation and/or aggregation with age. Among these proteins, synaptic proteins were highly enriched, suggesting a cascade of events emanating from impaired synaptic protein turnover and aggregation to the disposal of these proteins, possibly by the engulfment of synapses by microglia. These findings reveal the dramatic loss of neuronal proteome maintenance with aging which could be causal for age-related synapse loss and cognitive decline.

neuroscience↗