An evolutionarily structured universe of protein architecture

被引:134
作者
Caetano-Anollés, G
Caetano-Anollés, D
机构
[1] Vital NRG, Knoxville, TN 37919 USA
[2] Univ Illinois, Dept Crop Sci, Urbana, IL 61801 USA
关键词
D O I
10.1101/gr.1161903
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Protein structural diversity encompasses a finite set of architectural designs. Embedded in these topologies are evolutionary histories that we here uncover using cladistic principles and measurements of protein-fold usage and sharing. The reconstructed phylogenies are inherently rooted and depict histories of protein and proteome diversification. Proteome phylogenies showed two monophyletic sister-groups delimiting Bacteria and Archaea, and a topology rooted in Eucarya. This suggests three dramatic evolutionary events and a common ancestor with a eukaryotic-like, gene-rich, and relatively modern organization. Conversely, a general phylogeny of protein architectures showed that structural classes of globular proteins appeared early in evolution and in defined order, the alpha/beta class being the first. Although most ancestral folds shared a common architecture of barrels or interleaved beta-sheets and alpha-helices, many were clearly derived, such as polyhedral folds in the all-alpha class and beta-sandwiches, beta-propellers, and beta-prisms in all-beta proteins. We also describe transformation pathways of architectures that are prevalently used in nature. For example, beta-barrels with increased curl and stagger were favored evolutionary outcomes in the all-beta class. Interestingly, we found cases where structural change followed the alpha-to-beta tendency uncovered in the tree of architectures. Lastly, we traced the total number of enzymatic functions associated with folds in the trees and show that there is a general link between structure and enzymatic function.
引用
收藏
页码:1563 / 1571
页数:9
相关论文
共 62 条
  • [1] Ancel LW, 2000, J EXP ZOOL, V288, P242, DOI 10.1002/1097-010X(20001015)288:3<242::AID-JEZ5>3.0.CO
  • [2] 2-O
  • [3] [Anonymous], COMPONENT TREE COMP
  • [4] Apic G, 2001, Bioinformatics, V17 Suppl 1, pS83
  • [5] Monophyly of class I aminoacyl tRNA synthetase, USPA, ETFP, photolyase, and PP-ATPase nucleotide-binding domains: Implications for protein evolution in the RNA world
    Aravind, L
    Anantharaman, V
    Koonin, EV
    [J]. PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 2002, 48 (01) : 1 - 14
  • [6] Trends in protein evolution inferred from sequence and structure analysis
    Aravind, L
    Mazumder, R
    Vasudevan, S
    Koonin, EV
    [J]. CURRENT OPINION IN STRUCTURAL BIOLOGY, 2002, 12 (03) : 392 - 399
  • [7] Recent segmental duplications in the human genome
    Bailey, JA
    Gu, ZP
    Clark, RA
    Reinert, K
    Samonte, RV
    Schwartz, S
    Adams, MD
    Myers, EW
    Li, PW
    Eichler, EE
    [J]. SCIENCE, 2002, 297 (5583) : 1003 - 1007
  • [8] Tracing the evolution of RNA structure in ribosomes
    Caetano-Anollés, G
    [J]. NUCLEIC ACIDS RESEARCH, 2002, 30 (11) : 2575 - 2587
  • [9] Evolved RNA secondary structure and the rooting of the universal tree of life
    Caetano-Anollés, G
    [J]. JOURNAL OF MOLECULAR EVOLUTION, 2002, 54 (03) : 333 - 345
  • [10] PROKARYOTES AND EUKARYOTES - STRATEGIES AND SUCCESSES
    CARLILE, M
    [J]. TRENDS IN BIOCHEMICAL SCIENCES, 1982, 7 (04) : 128 - 130