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PloS one
Published

Optimised fluorescence-activated nuclei sorting for epigenomic analysis of cortical cell types

Authors

Barry Chioza, Stefania Policicchio, Joe Burrage, Georgina E T Blake, Rosemary A Bamford, Alice Franklin, Darren Soanes, Philippa M Wells, Ann Babtie, Marina Flores Payan, Jonathan P Davies, Anthony Klokkaris, Emma M Walker, Joy N Ismail, Paulina Urbanaviciute, Sarah J Marzi, Eilis Hannon, Jonathan Mill, Emma L Dempster

Abstract

PLoS One. 2026 Oct 6;21(10):e0359643. doi: 10.1371/journal.pone.0359643. eCollection 2026.

ABSTRACT

Increased understanding of the functional complexity of the genome has led to growing recognition of the role of non-sequence-based regulatory variation in disorders of the human central nervous system. Most genomic analyses of the brain are limited by the use of bulk tissue, which comprises a heterogeneous mix of different neural cell types with distinct epigenetic profiles, thereby limiting the ability to attribute regulatory changes to specific cell populations. Given the limited availability of human post-mortem tissue resources and the importance of integrating multi-omic data from the same samples, there is a critical need for methods that enable parallel, cell-type-resolved genomic profiling. We present optimised protocols using fluorescence-activated nuclei sorting (FANS) to isolate nuclei from different human and mouse brain cell types for downstream multi-omic analysis. Our approach enables the robust purification of neuronal, oligodendrocyte, microglial and other glial-origin nuclei from both adult and fetal brain tissue. We demonstrate that FANS-isolated nuclei are compatible with a wide range of genomic assays, including profiling of DNA modifications, histone modifications, chromatin accessibility, and gene expression. This protocol maximises the utility of limited post-mortem tissue resources and provides a unified workflow for comprehensive, cell-type-specific interrogation of molecular mechanisms involved in the brain.

PMID:42837428 | DOI:10.1371/journal.pone.0359643

UK DRI Authors

Paulina Urbanaviciute

PhD student

Investigating cell type specific epigenetic gene regulation landscapes in Alzheimer's and Parkinson's disease.

Paulina Urbanaviciute
Jonathan Mill, man with light hair and a grey polo shirt

Prof Jonathan Mill

UK DRI Affiliate Member

Professor of Epigenomics, University of Exeter

Prof Jonathan Mill