Literature DB >> 11689687

The Nsp1p carboxy-terminal domain is organized into functionally distinct coiled-coil regions required for assembly of nucleoporin subcomplexes and nucleocytoplasmic transport.

S M Bailer1, C Balduf, E Hurt.   

Abstract

Nucleoporin Nsp1p, which has four predicted coiled-coil regions (coils 1 to 4) in the essential carboxy-terminal domain, is unique in that it is part of two distinct nuclear pore complex (NPC) subcomplexes, Nsp1p-Nup57p-Nup49p-Nic96p and Nsp1p-Nup82p-Nup159p. As shown by in vitro reconstitution, coiled-coil region 2 (residues 673 to 738) is sufficient to form heterotrimeric core complexes and can bind either Nup57p or Nup82p. Accordingly, interaction of Nup82p with Nsp1p coil 2 is competed by excess Nup57p. Strikingly, coil 3 and 4 mutants are still assembled into the core Nsp1p-Nup57p-Nup49p complex but no longer associate with Nic96p. Consistently, the Nsp1p-Nup57p-Nup49p core complex dissociates from the nuclear pores in nsp1 coil 3 and 4 mutant cells, and as a consequence, defects in nuclear protein import are observed. Finally, the nsp1-L640S temperature-sensitive mutation, which maps in coil 1, leads to a strong nuclear mRNA export defect. Thus, distinct coiled-coil regions within Nsp1p-C have separate functions that are related to the assembly of different NPC subcomplexes, nucleocytoplasmic transport, and incorporation into the nuclear pores.

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Year:  2001        PMID: 11689687      PMCID: PMC99963          DOI: 10.1128/MCB.21.23.7944-7955.2001

Source DB:  PubMed          Journal:  Mol Cell Biol        ISSN: 0270-7306            Impact factor:   4.272


  45 in total

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Review 2.  The nuclear pore complex: a protein machine bridging the nucleus and cytoplasm.

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3.  Nup116p associates with the Nup82p-Nsp1p-Nup159p nucleoporin complex.

Authors:  S M Bailer; C Balduf; J Katahira; A Podtelejnikov; C Rollenhagen; M Mann; N Pante; E Hurt
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4.  Comparative spatial localization of protein-A-tagged and authentic yeast nuclear pore complex proteins by immunogold electron microscopy.

Authors:  B Fahrenkrog; J P Aris; E C Hurt; N Panté; U Aebi
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Authors:  D Görlich; U Kutay
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Authors:  A K Ho; T X Shen; K J Ryan; E Kiseleva; M A Levy; T D Allen; S R Wente
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9.  The yeast nuclear pore complex: composition, architecture, and transport mechanism.

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7.  Probing the disordered domain of the nuclear pore complex through coarse-grained molecular dynamics simulations.

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8.  A Programmable DNA Origami Platform for Organizing Intrinsically Disordered Nucleoporins within Nanopore Confinement.

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