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Grandke, F.

Publications and source records attributed to Grandke, F..

4 recordsLinked to original sources

Angiopoietin signalling is a central axis of amyloid-driven vascular dysfunction in Alzheimer's disease

The neurovascular unit is critical for brain health, and its dysfunction has been linked to Alzheimers disease (AD). However, a cell-type-resolved understanding of how diverse vascular cells become dysfunctional and contribute to disease has been missing. Here, we applied Vessel Isolation and Nuclei Extraction for Sequencing (VINE-seq) to build a comprehensive transcriptomic atlas from 101 individuals along AD progression. Our analysis of over 842,646 parenchymal and vascular nuclei reveals that vascular dysfunction in AD is driven by transcriptional changes rather than shifts in cell proportions, with brain endothelial cells (BECs) and smooth muscle cells (SMCs) most affected. Strikingly, these molecular signatures emerge early at the mild cognitive impairment (MCI) stage, implicating vascular dysfunction early in AD pathogenesis. Stratifying by pathology reveals distinct vascular responses to {beta}-amyloid and tau: {beta}-amyloid burden primarily perturbs BECs and SMCs, while tau pathology predominantly impacts glial cells. We identify dysregulated angiopoietin signaling across multiple vascular cell types as a key axis, with antagonistic ANGPT2 in vascular cells and ANGPT1 in astrocytes becoming progressively dysregulated with AD. Together, this work provides a foundational resource that reveals early and pathology-specific pathways of vascular dysfunction in AD. Key MessagesO_LIVINE-seq analysis from 101 individuals creates a comprehensive human brain vascular atlas across Alzheimers disease (AD) progression. C_LIO_LIAD vascular dysfunction is driven by transcriptional changes rather than shifts in cell proportions, with BECs and SMCs most affected. C_LIO_LITranscriptional signatures of vascular dysfunction emerge early at the mild cognitive impairment (MCI) stage, preceding severe cognitive symptoms and aligning more closely with AD than cognitively normal individuals. C_LIO_LIA{beta} and tau associate with distinct vascular changes: A{beta} mainly perturbs endothelial and smooth muscle cells, while tau impacts microglia and astrocytes. C_LIO_LIAngiopoietin signaling (antagonistic ANGPT2 in vascular cells vs. ANGPT1 in astrocytes) becomes progressively dysregulated during AD progression. C_LI

neuroscience↗

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↗

PBMCpedia: A Harmonized PBMC scRNA-seq Database With Unified Mapping and Enhanced Celltype Annotation

Reproducibility in single-cell transcriptomics remains limited by inconsistent preprocessing, heterogeneous cell type annotations, and study-specific batch effects. This challenge is particularly pronounced in peripheral blood mononuclear cell (PBMC) datasets, which are central to immunological research but rarely harmonized across studies. We present PBMCpedia, a unified PBMC atlas comprising over 4.3 million single cells from 519 samples across 24 publicly available scRNA-seq studies. Unlike prior efforts, PBMCpedia reprocesses all raw sequencing data using a single, standardized pipeline with consistent quality control, batch correction, and multi-resolution cell type annotation. The dataset spans 14 diseases, including autoimmune, infectious, and neurodegenerative conditions, alongside healthy controls, enabling reproducible, metadata-aware comparisons across biological contexts. In addition to transcriptomes, PBMCpedia includes TCR/BCR repertoire data for 75 samples and surface protein measurements for 56 samples, supporting integrative immune profiling at the transcriptomic and proteogenomic levels. To support exploration and accessibility, we provide an interactive web interface (https://web.ccb.uni-saarland.de/pbmcpedia/) for querying gene expression, marker genes, and pathway enrichment across cell types, conditions, sexes, and age groups. PBMCpedia fills a critical gap by offering a transparent, harmonized, and disease-diverse PBMC resource designed for cross-study immune profiling and discovery.

bioinformatics↗

Spatiotemporal transcriptomic niches of complement pathway and serine protease inhibitor activation in aging and infection

Aging is a multifactorial and complex physiological process, affecting every organ with characteristic manifestations. Understanding the molecular mechanisms that drive aging processes is crucial to targeting age-related disorders. Recent reports suggest that severe post-infection syndromes can partially accelerate aging. However, the underlying gene-encoded regulatory interplay, whether being shared or distinct between aging and infection biology are poorly understood. Here, we employed spatial transcriptomics to establish a multi-organ atlas (brain, heart, kidney, liver, lung, and spleen) across the mouse lifespan (4, 17, and 26 months). Dissecting high-quality fresh-frozen tissue samples at unbiased molecular resolution, we found both organ-specific and cross-organ gene dysregulation upon aging. We identified age-related trajectories in gene expression and cell state, some only detectable within their spatial context, and provide validation at subcellular resolution. The most prominent effect was organ-wide immune system activation with spatially variable severity. We therefore evaluated how aging mimics the expression signatures observed in systemic infection, using spatial transcriptomics slices from young mice infected with Plasmodium berghei ANKA. While on the gene level the effect sizes caused by the infection outweighed those of aging, we reveal a shared activation of the early complement pathway (C4b) and serine protease inhibitors (Serpin gene family) within by phenotype distinct spatial niches. We show that this common RNA signature is driven by tissue-specific cell types and eventually affects protein levels in the aged brain, rendering them a target for future mechanistic and drug discovery studies. Taken together, our study provides a coherent in-depth and cross-organ transcriptomics atlas to systematically study aging and infection in the mouse at spatiotemporal resolution. Key highlightsO_LILarge-scale and high-resolution atlas of spatial transcriptomics from six organs to study aging and systemic infection across two mouse cohorts. C_LIO_LIStrong transcriptional alterations found in distinct organ-specific niches for aging and acute malaria, with organ- and cell type-associated immune responses. C_LIO_LIDysregulation of early complement proteases (C4b) and serine protease inhibitors (Serpina3n) as common theme across central nervous system and peripheral organs. C_LI

molecular biology↗