Single-nuclei isoform RNA sequencing reveals combination patterns of transcript elements across human brain cell types
Hardwick, S. A.; Hu, W.; Joglekar, A.; Fan, L.; Collier, P. G.; Foord, C.; Balacco, J.; Belchikov, N.; Jarroux, J.; Prjibelski, A. D.; Mikheenko, A.; Luo, W.; Milner, T. A.; Ndhlovu, L.; Trojanowski, J. Q.; Lee, V. M.; Fedrigo, O.; Tombacz, D.; Ross, M. E.; Jarvis, E.; Boldogkoi, Z.; Gan, L.; Tilgner, H. U.
Show abstract
Single-nuclei RNA-Seq is being widely employed to investigate cell types, especially of human brain and other frozen samples. In contrast to single-cell approaches, however, the majority of single-nuclei RNA counts originate from partially processed RNA leading to intronic cDNAs, thus hindering the investigation of complete isoforms. Here, using microfluidics, PCR-based artifact removal, target enrichment, and long-read sequencing, we developed single-nuclei isoform RNA-sequencing ( SnISOr-Seq), and applied it to the analysis of human adult frontal cortex samples. We found that exons associated with autism exhibit coordinated and more cell-type specific inclusion than exons associated with schizophrenia or ALS. We discovered two distinct modes of combination patterns: first, those distinguishing cell types in the human brain. These are enriched in combinations of TSS-exon, exon-polyA site, and distant (non-adjacent) exon pairs. Second, those with all isoform combinations found within one neural cell type, which are enriched in adjacent exon pairs. Furthermore, adjacent exon pairs are predominantly mutually associated, while distant pairs are frequently mutually exclusive. Finally, we observed that human-specific exons are as tightly coordinated as conserved exons, pointing to an efficient evolutionary mechanism underpinning coordination. SnISOr-Seq opens the door to single-nuclei long-read isoform analysis in the human brain, and in any frozen, archived or hard-to-dissociate sample.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- A spatial long-read approach at near-single-cell resolution reveals developmental regulation of splicing and polyadenylation sites in distinct cortical layers and cell types. 98%
- Cell-type, single-cell, and spatial signatures of brain-region specific splicing in postnatal development 97%
- Cellular and genetic drivers of RNA editing variation in the human brain 97%
Similar papers in this journal
Similar papers in this journal
Similar papers in this journal
- Divergent neuronal DNA methylation patterns across human cortical development: Critical periods and a unique role of CpH methylation 96%
- An integrated single-cell RNA-seq map of human neuroblastoma tumors and preclinical models uncovers divergent mesenchymal-like gene expression programs. 95%
- Genetic effects of sequence-conserved enhancer-like elements on human complex traits 95%
Similar papers in this journal
- Developmental Dynamics of RNA Translation in the Human Brain 97%
- Dynamic subtype- and context-specific subcellular RNA regulation in growth cones of developing neurons of the cerebral cortex 96%
- Extensive profiling of transcription factors in postmortem brains defines genomic occupancy in disease-relevant cell types and links TF activities to neuropsychiatric disorders 96%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.