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Kerlin, M. A.

Publications and source records attributed to Kerlin, M. A..

2 recordsLinked to original sources

Transcriptional coregulation in cis around a contact insulation site revealed by single-molecule microscopy

Chromosome conformation in mammals is closely related to gene regulation. Within topologically associating domains, where genomic contacts are enriched, genes tend to show correlated expression across tissues and conditions, suggesting domain-wide mechanisms coregulating multiple genes, such as enhancer sharing or local histone mark spreading. At the single-cell level, where transcription occurs in sporadic bursts, transcriptional coordination has been observed between proximal genes, but how the local folding of mammalian chromosomes influences gene coregulation in cis at individual alleles remains unclear. Using single-molecule microscopy, we imaged nascent transcription from three adjacent genes located around a strong contact insulation site at the FOS locus, during the estrogen response in human breast cancer cells. To interpret this data, we developed two new analysis approaches to dissect the sources of (co)variation in gene activities: one to separate allele-extrinsic, allele-intrinsic, and gene-autonomous components; and another one to quantify the contributions of burst co-occurrence and burst size correlations. We find that transcriptional variability is largely gene-autonomous, yet correlations between genes display distinct patterns and occur almost exclusively in cis. Correlations are stronger between proximal and less insulated genes. However, unexpectedly, substantial correlations also occur across the strong insulation site and, under certain conditions, two proximal genes on the same side can exhibit uncorrelated burst occurrences. By disentangling burst co-occurrence from burst size correlations, we reveal transcriptional patterns suggesting two distinct coregulatory mechanisms influenced by local chromosome folding.

biophysics↗

Regulation of replicative histone RNA metabolism by the histone chaperone ASF1

In S phase, duplication and assembly of the whole genome into chromatin requires upregulation of replicative histone gene expression. Here, we explored a potential role of histone chaperones in this process thereby linking chromatin assembly with histone production in human cells. Depletion of the ASF1 chaperone specifically decreased the pool of replicative histones both at the levels of soluble protein and total RNA, while depletion of CAF-1 did not. Most replicative histone genes decreased in their overall expression as revealed by total RNA-seq. In contrast, both their newly synthesized RNAs and nascent RNAs at transcription sites increased as shown by 4sU-labeled RNA-seq and single-molecule RNA FISH, respectively. Further inspection of the sequences corresponding to replicative histone RNAs showed a 3 processing defect, leading to unprocessed transcripts usually targeted for degradation. We discuss how this regulation of replicative histone RNA metabolism by ASF1 fine-tunes the histone dosage to avoid unbalanced situations deleterious for cell survival.

molecular biology↗