Literature DB >> 20485343

Sequence space and the ongoing expansion of the protein universe.

Inna S Povolotskaya1, Fyodor A Kondrashov.   

Abstract

The need to maintain the structural and functional integrity of an evolving protein severely restricts the repertoire of acceptable amino-acid substitutions. However, it is not known whether these restrictions impose a global limit on how far homologous protein sequences can diverge from each other. Here we explore the limits of protein evolution using sequence divergence data. We formulate a computational approach to study the rate of divergence of distant protein sequences and measure this rate for ancient proteins, those that were present in the last universal common ancestor. We show that ancient proteins are still diverging from each other, indicating an ongoing expansion of the protein sequence universe. The slow rate of this divergence is imposed by the sparseness of functional protein sequences in sequence space and the ruggedness of the protein fitness landscape: approximately 98 per cent of sites cannot accept an amino-acid substitution at any given moment but a vast majority of all sites may eventually be permitted to evolve when other, compensatory, changes occur. Thus, approximately 3.5 x 10(9) yr has not been enough to reach the limit of divergent evolution of proteins, and for most proteins the limit of sequence similarity imposed by common function may not exceed that of random sequences.

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Year:  2010        PMID: 20485343     DOI: 10.1038/nature09105

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  35 in total

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  91 in total

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6.  Protein Design: Getting to the bottom of the TIM barrel.

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Review 7.  Epistasis in protein evolution.

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8.  Diversity of Functionally Permissive Sequences in the Receptor-Binding Site of Influenza Hemagglutinin.

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9.  Pervasive contingency and entrenchment in a billion years of Hsp90 evolution.

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10.  Emerging Frontiers in the Study of Molecular Evolution.

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