Nuclear pores as conduits for fluid flow during osmotic stress
Hoffmann, P. C.; Kim, H.; Obarska-Kosinska, A.; Kreysing, J. P.; Andino-Frydman, E.; Cruz-Leon, S.; Cernikova, L.; Kosinski, J.; Turonova, B.; Hummer, G.; Beck, M.
Show abstract
Changing environmental conditions necessitate an immediate cellular adaptation to ensure survival. Dictyostelium discoideum, a bacteriovore slime mold present in the soil of most terrestrial ecosystems, is known for its ability to tolerate drastic changes in osmolarity. How the cells cope with the resulting mechanical stress remains understudied. Here we show that D. discoideum has extraordinarily elaborate and resilient nuclear pores that serve as conduits for massive fluid exchange between cytosol and nucleus. We capitalize on the unique properties of D. discoideum cells to quantify flow across the nuclear envelope that is necessitated by changing nuclear size in response to osmotic stress. Based on mathematical concepts adapted from hydrodynamics, we conceptualize this phenomenon as porous flow across nuclear pores. This type of fluid flow is distinct from the canonically characterized modes of nucleocytoplasmic transport, i.e. passive diffusion and active nuclear transport, because of its dependence on pressure. Our insights are relevant in any biological condition that necessitates rapid nuclear size changes, which includes metastasizing cancer cells squeezing through constrictions, migrating cells and differentiating tissues.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- A modular platform for engineering function ofnatural and synthetic biomolecular condensates 97%
- Increasingly efficient chromatin binding of cohesin and CTCF supports chromatin architecture formation during zebrafish embryogenesis 97%
- Transient inhibition of cell division in competent pneumococcal cells results from deceleration of the septal peptidoglycan complex 96%
Similar papers in this journal
- Membrane curvature sensing and stabilization by the autophagic LC3 lipidation machinery 96%
- Structure of the hexameric fungal plasma membrane proton pump in its auto-inhibited state 96%
- Replication-dependent histone (Repli-Histo) labeling dissects the physical properties of euchromatin/heterochromatin in living human cells. 96%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.