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Cell-type-specific Loops Linked to RNA Polymerase II Elongation in Human Neural Differentiation

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Journal Cell Genom
Date 2024 Jul 11
PMID 38991604
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Abstract

DNA is folded into higher-order structures that shape and are shaped by genome function. The role of long-range loops in the establishment of new gene expression patterns during cell fate transitions remains poorly understood. Here, we investigate the link between cell-specific loops and RNA polymerase II (RNA Pol II) during neural lineage commitment. We find thousands of loops decommissioned or gained de novo upon differentiation of human induced pluripotent stem cells (hiPSCs) to neural progenitor cells (NPCs) and post-mitotic neurons. During hiPSC-to-NPC and NPC-to-neuron transitions, genes changing from RNA Pol II initiation to elongation are >4-fold more likely to anchor cell-specific loops than repressed genes. Elongated genes exhibit significant mRNA upregulation when connected in cell-specific promoter-enhancer loops but not invariant promoter-enhancer loops or promoter-promoter loops or when unlooped. Genes transitioning from repression to RNA Pol II initiation exhibit a slight mRNA increase independent of loop status. Our data link cell-specific loops and robust RNA Pol II-mediated elongation during neural cell fate transitions.

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References
1.
Fudenberg G, Imakaev M, Lu C, Goloborodko A, Abdennur N, Mirny L . Formation of Chromosomal Domains by Loop Extrusion. Cell Rep. 2016; 15(9):2038-49. PMC: 4889513. DOI: 10.1016/j.celrep.2016.04.085. View

2.
Mifsud B, Tavares-Cadete F, Young A, Sugar R, Schoenfelder S, Ferreira L . Mapping long-range promoter contacts in human cells with high-resolution capture Hi-C. Nat Genet. 2015; 47(6):598-606. DOI: 10.1038/ng.3286. View

3.
Gilgenast T, Phillips-Cremins J . Systematic Evaluation of Statistical Methods for Identifying Looping Interactions in 5C Data. Cell Syst. 2019; 8(3):197-211.e13. PMC: 6696950. DOI: 10.1016/j.cels.2019.02.006. View

4.
Sanyal A, Lajoie B, Jain G, Dekker J . The long-range interaction landscape of gene promoters. Nature. 2012; 489(7414):109-13. PMC: 3555147. DOI: 10.1038/nature11279. View

5.
Alexander J, Guan J, Li B, Maliskova L, Song M, Shen Y . Live-cell imaging reveals enhancer-dependent transcription in the absence of enhancer proximity. Elife. 2019; 8. PMC: 6534382. DOI: 10.7554/eLife.41769. View