bioRxiv Science⌕ Search

Biology subjects

Qutbuddin, Y.

Publications and source records attributed to Qutbuddin, Y..

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↗

Self-organized spatial targeting of contractile actomyosin rings for synthetic cell division

One of the challenges of bottom-up synthetic biology is the engineering of a minimal module for self-division of synthetic cells. To produce the contractile forces required for the controlled excision of cell-like compartments such as giant unilamellar vesicles (GUVs), reconstituted cytokinetic rings made of actin are considered to be among the most promising structures of a potential synthetic division machinery. Although the targeting of actin rings to GUV membranes and their myosin-induced constriction have been previously demonstrated, large-scale vesicle deformation has been precluded due to the lacking spatial control of these contractile structures. Here, we show the combined in vitro reconstitution of actomyosin rings and the bacterial MinDE protein system, effective in targeting E.coli Z-rings to mid-cell, within GUVs. Incorporating this spatial positioning tool, which induces active transport of any diffusible molecule on membranes, yields self-organized assembly of actomyosin rings at the equatorial plane of vesicles. Remarkably, the synergistic effect of Min oscillations and the contractile nature of actomyosin bundles induces mid-vesicle membrane deformation and striking bleb-like protrusions, leading to shape remodeling and symmetry breaking. Our system showcases how functional machineries from various organisms may be synergistically combined in vitro, leading to the emergence of new functionality towards a synthetic division system.

synthetic biology↗