We have analyzed how nuclear envelope tension that occurs in response to an altered osmotic state affects flux across the nuclear envelope in the amoeba Dictyostelium discoideum. To be able to do so, we solved the NPC structure in Dictyostelium at high resolution. This structure largely resembled NPC architectures in other organisms, yet we did find an unexpected unique arrangement of the so-called Y complexes at the nucleoplasmatic side of the NPC. We furthermore demonstrated that the NPC undergoes constriction and dilation upon osmotic stress in these cells and measured the corresponding changes in nuclear volume. Based on these experimental data, we built a mathematical model of fluid flow through the central channel of the NPC.
In addition, we also analyzed a potential link between NPC structure and nuclear envelope (NE) rupture using mouse embryonic stem (mES) cells lacking the NPC Y-complex component Nup133. Pluripotent cells have been shown to proliferate despite Nup133 deletion, while terminal differentiation fails. We used cryo-ET together with subtomogram averaging and template matching to compare the NPC structure in pluripotent mES and neural progenitor cells, in a wildtype as well as Nup133-/- background. In wildtype mES cells, NPCs dilated upon induction of differentiation, supporting the model that altered tension at the nuclear envelope is linked to NPC diameter . NPCs in Nup133-/- mES cells retained a largely intact overall architecture, yet also exhibited non-canonical seven- and nine-fold symmetry. In addition, we found that NPCs were heterogeneous and contained incomplete rings. Upon induction of differentiation, a proportion of Nup133-/- NPCs over-stretches and disintegrates.