bioRxiv Science⌕ Search

Biology subjects

Krohn, J.-H.

Publications and source records attributed to Krohn, J.-H..

2 recordsLinked to original sources

Co-transcriptional Phase Separation of Nucleic Acids at Membrane Surfaces

Transcription is usually framed as information transfer, yet it also injects a new polymer into a crowded, confined environment. Here we demonstrate how spatial confinement to surfaces in a minimal membrane-bound transcription (MBT) system displays the physical consequences of RNA synthesis. Within a dense membrane-tethered DNA network, transcription drives co-transcriptional RNA phase separation: nascent RNA oligomerizes, gels and demixes from a surrounding fluid DNA phase, generating stable spatial patterns while mechanically remodeling the DNA layer. RNA gelation sequesters T7 RNA polymerase, whereas RNA-binding and translation-associated factors reverse gelation and restore fluidity. Thus, in the absence of downstream regulatory machinery, transcription under confinement is sufficient to trigger RNA condensation and nucleic-acid phase separation. The membrane as confining interface catalyzes the onset of DNA-RNA demixing and modulates the morphology of the resulting patterns. Since such large-scale spatial unmixing may be detrimental to cellular physiology, we suggest that one fundamental role of translation is to actively prevent condensation effects created by continuous RNA production.

biochemistry↗

Crosslinking by ZapD drives the assembly of short, discontinuous FtsZ filaments into ring-like structures in solution

Bacterial cell division relies on the Z ring, a cytoskeletal structure that acts as a scaffold for the assembly of the divisome. To date, the detailed mechanisms underlying the assembly and stabilization of the Z ring remain elusive. This study highlights the role of the FtsZ-associated protein (Zap) ZapD in the assembly and stabilization of Z-ring-like structures via filament crosslinking. Using cryo-electron tomography and biochemical analysis, we show that, at equimolar concentrations of ZapD and FtsZ, ZapD induces the formation of toroidal structures composed of short, curved FtsZ filaments that are crosslinked vertically, but also laterally and diagonally. At higher concentrations of ZapD, regularly spaced ZapD dimers crosslink FtsZ filaments from above, resulting in the formation of straight bundles. Despite the simplicity of this reconstituted system, these findings provide valuable insights into the structural organization and stabilization of the Z ring by Zap proteins in bacterial cells, revealing the key role of optimal crosslinking density and geometry in enabling filament curvature and ring formation.

biochemistry↗