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Watters, J. W.

Publications and source records attributed to Watters, J. W..

2 recordsLinked to original sources

Head-on and co-directional RNA polymerase collisions orchestrate bidirectional transcription termination

Genomic DNA is a crowded track where translocating motor proteins frequently collide. It remains unclear whether these collisions, generally thought to occur inadvertently, carry any physiological function. In this work, we developed a single-molecule assay to directly visualize the trafficking of individual E. coli RNA polymerases (RNAPs) on DNA. This assay enabled us to test the hypothesis that RNAP collisions drive bidirectional transcription termination of convergent gene pairs. We showed that the head-on collision between two converging RNAPs is necessary to prevent transcriptional readthrough, but insufficient to release the collided RNAPs from the DNA. Remarkably, co-directional collision from a trailing RNAP into the head-on collided complex dramatically increases the termination efficiency. Furthermore, a stem-loop structure formed in the nascent RNA is required for collisions to occur at well-defined positions between gene boundaries. These findings, corroborated by transcriptomic data, establish programmed RNAP collisions as an effective strategy to achieve precise gene expression and imply a broader role of genomic conflicts in cell physiology.

biophysics↗

Single-stranded nucleic acid sensing and coacervation by linker histone H1

The linker histone H1 is the most abundant group of eukaryotic chromatin-binding proteins. The mechanism underlying the diverse physiological functions of H1 remains unclear. Here we used single-molecule fluorescence and force microscopy to observe the behavior of H1 on DNA under different tensions. Unexpectedly, we found that H1 coalesces around nascent ssDNA. Molecular dynamics simulations revealed that multivalent and transient interactions between H1 and ssDNA mediate their phase separation. We further showed that longer and unpaired nucleic acids result in more viscous, gel-like H1 droplets. Finally, we imaged H1 puncta in cells under normal and stressed conditions and observed that RPA and H1 occupy separate nuclear regions. Overall, our results provide a new perspective to understanding the role of H1 in genome organization and maintenance.

biophysics↗