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PMID: 18652645 Published · epublish English Journal Article

Origin of the nucleus and Ran-dependent transport to safeguard ribosome biogenesis in a chimeric cell.

Biology direct ·Vol. 3 ·2008-07-24 ·Pages 31

Jékely G

Abstract

The origin of the nucleus is a central problem about the origin of eukaryotes. The common ancestry of nuclear pore complexes (NPC) and vesicle coating complexes indicates that the nucleus evolved via the modification of a pre-existing endomembrane system. Such an autogenous scenario is cell biologically feasible, but it is not clear what were the selective or neutral mechanisms that had led to the origin of the nuclear compartment. A key selective force during the autogenous origin of the nucleus could have been the need to segregate ribosome factories from the cytoplasm where ribosomal proteins (RPs) of the protomitochondrium were synthesized. After its uptake by an anuclear cell the protomitochondrium transferred several of its RP genes to the host genome. Alphaproteobacterial RPs and archaebacterial-type host ribosomes were consequently synthesized in the same cytoplasm. This could have led to the formation of chimeric ribosomes. I propose that the nucleus evolved when the host cell compartmentalised its ribosome factories and the tightly linked genome to reduce ribosome chimerism. This was achieved in successive stages by first evolving karyopherin and RanGTP dependent chaperoning of RPs, followed by the evolution of a membrane network to serve as a diffusion barrier, and finally a hydrogel sieve to ensure selective permeability at nuclear pores. Computer simulations show that a gradual segregation of cytoplasm and nucleoplasm via these steps can progressively reduce ribosome chimerism. Ribosome chimerism can provide a direct link between the selective forces for and the mechanisms of evolving nuclear transport and compartmentalisation. The detailed molecular scenario presented here provides a solution to the gradual evolution of nuclear compartmentalization from an anuclear stage. This article was reviewed by Eugene V Koonin, Martijn Huynen, Anthony M. Poole and Patrick Forterre.

MeSH Terms
Active Transport, Cell Nucleus/genetics Cell Nucleus/genetics,metabolism Chimera/metabolism Computer Simulation Evolution, Molecular Models, Genetic Nuclear Envelope/genetics Ribosomal Proteins/genetics,metabolism Ribosomes/genetics,metabolism Thermus thermophilus/genetics,metabolism ran GTP-Binding Protein/physiology
Chemicals
Ribosomal Proteins ran GTP-Binding Protein
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
Jékely Gáspár
Max Planck Institute for Developmental Biology, Spemannstrasse 35. 72076 Tübingen, Germany. gaspar.jekely@tuebingen.mpg.de
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Article Info
Journal
Biology direct
Abbr.
Biol Direct
ISSN
1745-6150
Published
2008-07-24
Epub
2008-00-24
Pages
31
Language
English
Region
England
NLM ID
101258412
PMCID
PMC2503971
Subset
IM
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