Integrative mapping reveals molecular features underlying the mechanism of nucleocytoplasmic transport

B Barak Raveh R Roi Eliasian (School of Computer Science and Engineering, Hebrew University of Jerusalem) S Shaked Rashkovits (School of Computer Science and Engineering, Hebrew University of Jerusalem) D Daniel Russel (Quantitative Biosciences Institute, University of California) R Ryo Hayama (Laboratory of Cellular and Structural Biology, The Rockefeller University) S Samuel Sparks (Departments of Biochemistry and Systems and Computational Biology, Albert Einstein College of Medicine) D Digvijay Singh R Roderick Y. H. Lim (Biozentrum and the Swiss Nanoscience Institute, University of Basel) E Elizabeth Villa (School of Biological Sciences, University of California San Diego) M Michael P. Rout D David Cowburn A Andrej Sali

Abstract

Nuclear pore complexes (NPCs) enable rapid, selective, and robust nucleocytoplasmic transport. To explain how transport emerges from the system components and their interactions, we used experimental data and theoretical information to construct an integrative Brownian dynamics model of transport through an NPC, coupled to a kinetic model of transport in the cell. The model recapitulates key aspects of transport for a wide range of molecular cargoes, including preribosomes and viral capsids. Our model quantifies how flexible phenylalanine-glycine (FG) repeat proteins create an entropic barrier to passive diffusion and how this barrier is selectively lowered in facilitated diffusion by the many transient interactions of nuclear transport receptors with the FG repeats. Selective transport is enhanced by “fuzzy” multivalent interactions, redundant FG repeat mass, coupling to the energy-dependent RanGTP concentration gradient, and exponential dependence of transport kinetics on the transport barrier. Our model will facilitate rational modulation of the NPC and its artificial mimics.

Article Details

Volume / Issue Vol. 122, Issue 42
Published October 21, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (12)

B

Barak Raveh

R

Roi Eliasian

School of Computer Science and Engineering, Hebrew University of Jerusalem

S

Shaked Rashkovits

School of Computer Science and Engineering, Hebrew University of Jerusalem

D

Daniel Russel

Quantitative Biosciences Institute, University of California

R

Ryo Hayama

Laboratory of Cellular and Structural Biology, The Rockefeller University

S

Samuel Sparks

Departments of Biochemistry and Systems and Computational Biology, Albert Einstein College of Medicine

D

Digvijay Singh

R

Roderick Y. H. Lim

Biozentrum and the Swiss Nanoscience Institute, University of Basel

E

Elizabeth Villa

School of Biological Sciences, University of California San Diego

M

Michael P. Rout

D

David Cowburn

A

Andrej Sali