| Literature DB >> 33627658 |
Casey A Thornton1, Ryan M Mulqueen1, Kristof A Torkenczy1, Andrew Nishida1, Eve G Lowenstein1, Andrew J Fields1, Frank J Steemers2, Wenri Zhang3, Heather L McConnell4, Randy L Woltjer5, Anusha Mishra4,6, Kevin M Wright7, Andrew C Adey8,9,10,11.
Abstract
High-throughput single-cell epigenomic assays can resolve cell type heterogeneity in complex tissues, however, spatial orientation is lost. Here, we present single-cell combinatorial indexing on Microbiopsies Assigned to Positions for the Assay for Transposase Accessible Chromatin, or sciMAP-ATAC, as a method for highly scalable, spatially resolved, single-cell profiling of chromatin states. sciMAP-ATAC produces data of equivalent quality to non-spatial sci-ATAC and retains the positional information of each cell within a 214 micron cubic region, with up to hundreds of tracked positions in a single experiment. We apply sciMAP-ATAC to assess cortical lamination in the adult mouse primary somatosensory cortex and in the human primary visual cortex, where we produce spatial trajectories and integrate our data with non-spatial single-nucleus RNA and other chromatin accessibility single-cell datasets. Finally, we characterize the spatially progressive nature of cerebral ischemic infarction in the mouse brain using a model of transient middle cerebral artery occlusion.Entities:
Year: 2021 PMID: 33627658 DOI: 10.1038/s41467-021-21515-7
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919