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Percolation transition prescribes protein size-specific barrier to passive transport through the nuclear pore complex

Author

Listed:
  • David Winogradoff

    (University of Illinois at Urbana-Champaign
    University of Illinois at Urbana-Champaign)

  • Han-Yi Chou

    (University of Illinois at Urbana-Champaign)

  • Christopher Maffeo

    (University of Illinois at Urbana-Champaign
    University of Illinois at Urbana-Champaign)

  • Aleksei Aksimentiev

    (University of Illinois at Urbana-Champaign
    University of Illinois at Urbana-Champaign
    University of Illinois at Urbana-Champaign)

Abstract

Nuclear pore complexes (NPCs) control biomolecular transport in and out of the nucleus. Disordered nucleoporins in the complex’s pore form a permeation barrier, preventing unassisted transport of large biomolecules. Here, we combine coarse-grained simulations of experimentally derived NPC structures with a theoretical model to determine the microscopic mechanism of passive transport. Brute-force simulations of protein transport reveal telegraph-like behavior, where prolonged diffusion on one side of the NPC is interrupted by rapid crossings to the other. We rationalize this behavior using a theoretical model that reproduces the energetics and kinetics of permeation solely from statistics of transient voids within the disordered mesh. As the protein size increases, the mesh transforms from a soft to a hard barrier, enabling orders-of-magnitude reduction in permeation rate for proteins beyond the percolation size threshold. Our model enables exploration of alternative NPC architectures and sets the stage for uncovering molecular mechanisms of facilitated nuclear transport.

Suggested Citation

  • David Winogradoff & Han-Yi Chou & Christopher Maffeo & Aleksei Aksimentiev, 2022. "Percolation transition prescribes protein size-specific barrier to passive transport through the nuclear pore complex," Nature Communications, Nature, vol. 13(1), pages 1-16, December.
  • Handle: RePEc:nat:natcom:v:13:y:2022:i:1:d:10.1038_s41467-022-32857-1
    DOI: 10.1038/s41467-022-32857-1
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    1. Seung Joong Kim & Javier Fernandez-Martinez & Ilona Nudelman & Yi Shi & Wenzhu Zhang & Barak Raveh & Thurston Herricks & Brian D. Slaughter & Joanna A. Hogan & Paula Upla & Ilan E. Chemmama & Riccardo, 2018. "Integrative structure and functional anatomy of a nuclear pore complex," Nature, Nature, vol. 555(7697), pages 475-482, March.
    2. Ruhollah Moussavi-Baygi & Yousef Jamali & Reza Karimi & Mohammad R K Mofrad, 2011. "Brownian Dynamics Simulation of Nucleocytoplasmic Transport: A Coarse-Grained Model for the Functional State of the Nuclear Pore Complex," PLOS Computational Biology, Public Library of Science, vol. 7(6), pages 1-16, June.
    3. Alan R. Lowe & Jake J. Siegel & Petr Kalab & Merek Siu & Karsten Weis & Jan T. Liphardt, 2010. "Selectivity mechanism of the nuclear pore complex characterized by single cargo tracking," Nature, Nature, vol. 467(7315), pages 600-603, September.
    4. Anthony P. Schuller & Matthias Wojtynek & David Mankus & Meltem Tatli & Rafael Kronenberg-Tenga & Saroj G. Regmi & Phat V. Dip & Abigail K. R. Lytton-Jean & Edward J. Brignole & Mary Dasso & Karsten W, 2021. "The cellular environment shapes the nuclear pore complex architecture," Nature, Nature, vol. 598(7882), pages 667-671, October.
    5. Alexander von Appen & Jan Kosinski & Lenore Sparks & Alessandro Ori & Amanda L. DiGuilio & Benjamin Vollmer & Marie-Therese Mackmull & Niccolo Banterle & Luca Parca & Panagiotis Kastritis & Katarzyna , 2015. "In situ structural analysis of the human nuclear pore complex," Nature, Nature, vol. 526(7571), pages 140-143, October.
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