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Ng, S. C.

Publications and source records attributed to Ng, S. C..

2 recordsLinked to original sources

Barrier-properties of Nup98 FG phases ruled by FG motif identity and inter-FG spacer length

Nup98 FG repeat domains comprise hydrophobic FG motifs linked through uncharged spacers. FG motifs capture nuclear transport receptors (NTRs) during nuclear pore complex (NPC) passage, confer inter-repeat cohesion, and condense the domains into a selective phase with NPC-typical barrier properties. We found that shortening inter-FG spacers enhances cohesion, increases phase density, and tightens such barrier, all consistent with a sieve-like phase. Phase separation tolerated mutating the Nup98-typical GLFG motifs, provided domain-hydrophobicity remained preserved. NTR-entry, however, was sensitive to (certain) deviations from canonical FG motifs, suggesting co-evolutionary adaptation. Unexpectedly, we found arginines to promote FG-phase-entry apparently also by hydrophobic interactions/ H-bonding and not just through cation-{pi} interactions. Although incompatible with NTR{middle dot}cargo complexes, a YG phase displayed remarkable transport selectivity, particularly for engineered GFPNTR-variants. GLFG to FSFG mutations made the FG phase hypercohesive, precluding NTR-entry. Extending spacers relaxed this hypercohesion. Thus, antagonism between cohesion and NTR{middle dot}FG interactions is key to transport selectivity.

biophysics↗

A simple thermodynamic description of phase separation of Nup98 FG domains

The permeability barrier of nuclear pore complexes (NPCs) controls nucleocytoplasmic transport. It retains inert macromolecules but allows facilitated passage of nuclear transport receptors that shuttle cargoes into or out of nuclei. The barrier can be described as a condensed phase assembled from cohesive FG repeat domains, including foremost the charge-depleted FG domain of Nup98. We found that Nup98 FG domains show an LCST-type phase separation, and we provide comprehensive and orthogonal experimental datasets for a quantitative description of this behaviour. A derived thermodynamic model correlates saturation concentration with repeat number, temperature, and ionic strength. It allows estimating the enthalpy, entropy, and{Delta} G ([~]0.2 kJ/mol, 0.1 kB{middle dot}T) contributions per repeat to phase separation and inter-repeat cohesion. While changing the cohesion strength strongly impacts the strictness of barrier, these numbers provide boundary conditions for in-depth modelling not only of barrier assembly but also of NPC passage.

biophysics↗