Recovery of genomic and transcriptomic profiles from decades-old FFPE brain tissues

Neurological, neurodegenerative, and psychiatric disorders impose substantial morbidity and disability worldwide, yet their molecular basis remains incompletely understood, in part due to limited access to human brain tissue. The Danish Brain Collection, comprising brains from individuals who lived in Danish psychiatric institutions from the 1940s to the 1980s, represents a unique but largely untapped resource for retrospective molecular investigation. Here, we assess the feasibility of extracting and sequencing DNA and RNA from decades-old FFPE brain tissue. We systematically evaluate how extraction and library preparation strategies influence nucleic acid yield and quality, and show that RNA end-repair prior to library preparation substantially enhances transcript diversity, improving data quality from highly degraded samples. Despite extensive fragmentation, we recover biologically informative transcriptomic profiles, including protein-coding and microRNA expression profiles that retain tissue-specific signatures. These results establish the Danish Brain Collection as a viable resource for genomic and transcriptomic analyses and demonstrate the broader potential of archival FFPE tissues for large-scale molecular studies.

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Publication Details

Journal
Scientific Reports
Published
2026-10-04
DOI
https://doi.org/10.1038/s41598-026-74554-9
Primary Topic
Molecular Biology Techniques and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Recovery of genomic and transcriptomic profiles from decades-old FFPE brain tissues

Christina Kjær, Sarah S. T. Mak, C Christiansen, Marcus Thomas P. Gilbert et al.
Scientific Reports
Molecular Biology Techniques and Applications
article

Recovery of genomic and transcriptomic profiles from decades-old FFPE brain tissues

Christina Kjær, Sarah S. T. Mak, C Christiansen, Marcus Thomas P. Gilbert, Emilio Mármol‐Sánchez, Nikolay Oskolkov, Martin Wirenfeldt, Emily Hansen Firoozfard
article en

Abstract

Neurological, neurodegenerative, and psychiatric disorders impose substantial morbidity and disability worldwide, yet their molecular basis remains incompletely understood, in part due to limited access to human brain tissue. The Danish Brain Collection, comprising brains from individuals who lived in Danish psychiatric institutions from the 1940s to the 1980s, represents a unique but largely untapped resource for retrospective molecular investigation. Here, we assess the feasibility of extracting and sequencing DNA and RNA from decades-old FFPE brain tissue. We systematically evaluate how extraction and library preparation strategies influence nucleic acid yield and quality, and show that RNA end-repair prior to library preparation substantially enhances transcript diversity, improving data quality from highly degraded samples. Despite extensive fragmentation, we recover biologically informative transcriptomic profiles, including protein-coding and microRNA expression profiles that retain tissue-specific signatures. These results establish the Danish Brain Collection as a viable resource for genomic and transcriptomic analyses and demonstrate the broader potential of archival FFPE tissues for large-scale molecular studies.

Scientific Reports
University of Copenhagen (DK), University of Southern Denmark (DK), Norwegian University of Science and Technology (NO), Rigshospitalet (DK), University College Copenhagen (DK), Latvijas Organiskās Sintēzes Institūts (LV), Hospital South West Jutland (DK), Capital Region of Denmark (DK)
Villum Fonden, European Regional Development Fund
Good health and well-being
Openalex Percentile: Top 21%
Molecular Biology Techniques and Applications
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