Origins, evolution, and phenotypic impact of new genes

被引:582
作者
Kaessmann, Henrik [1 ]
机构
[1] Univ Lausanne, Ctr Integrat Genom, CH-1015 Lausanne, Switzerland
基金
瑞士国家科学基金会; 欧洲研究理事会;
关键词
RETROPOSED GENE; ADAPTIVE EVOLUTION; RAPID EVOLUTION; DUPLICATE GENES; NONCODING RNAS; IMPRINTED GENE; EXPRESSION; RETROTRANSPOSON; RETROGENE; MICRORNAS;
D O I
10.1101/gr.101386.109
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
Ever since the pre-molecular era, the birth of new genes with novel functions has been considered to be a major contributor to adaptive evolutionary innovation. Here, I review the origin and evolution of new genes and their functions in eukaryotes, an area of research that has made rapid progress in the past decade thanks to the genomics revolution. Indeed, recent work has provided initial whole-genome views of the different types of new genes for a large number of different organisms. The array of mechanisms underlying the origin of new genes is compelling, extending way beyond the traditionally well-studied source of gene duplication. Thus, it was shown that novel genes also regularly arose from messenger RNAs of ancestral genes, protein-coding genes metamorphosed into new RNA genes, genomic parasites were co-opted as new genes, and that both protein and RNA genes were composed from scratch (i.e., from previously nonfunctional sequences). These mechanisms then also contributed to the formation of numerous novel chimeric gene structures. Detailed functional investigations uncovered different evolutionary pathways that led to the emergence of novel functions from these newly minted sequences and, with respect to animals, attributed a potentially important role to one specific tissue-the testis-in the process of gene birth. Remarkably, these studies also demonstrated that novel genes of the various types significantly impacted the evolution of cellular, physiological, morphological, behavioral, and reproductive phenotypic traits. Consequently, it is now firmly established that new genes have indeed been major contributors to the origin of adaptive evolutionary novelties.
引用
收藏
页码:1313 / 1326
页数:14
相关论文
共 127 条
  • [91] The emergence of new genes on the young therian X
    Potrzebowski, Lukasz
    Vinckenbosch, Nicolas
    Kaessmann, Henrik
    [J]. TRENDS IN GENETICS, 2010, 26 (01) : 1 - 4
  • [92] An endogenous hybrid mRNA encodes TWE-PRIL, a functional cell surface TWEAK-APRIL fusion protein
    Pradet-Balade, B
    Medema, JP
    López-Fraga, M
    Lozano, JC
    Kolfschoten, GM
    Picard, A
    Martínez, C
    Garcia-Sanz, JA
    Hahne, M
    [J]. EMBO JOURNAL, 2002, 21 (21) : 5711 - 5720
  • [93] The mouse juvenile spermatogonial depletion (js']jsd) phenotype is due to a mutation in the X-derived retrogene, mUtp14b
    Rohozinski, J
    Bishop, CE
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2004, 101 (32) : 11695 - 11700
  • [94] Gene amplification and genomic plasticity in prokaryotes
    Romero, D
    Palacios, R
    [J]. ANNUAL REVIEW OF GENETICS, 1997, 31 : 91 - 111
  • [95] Mitochondrial Targeting Adaptation of the Hominoid-Specific Glutamate Dehydrogenase Driven by Positive Darwinian Selection
    Rosso, Lia
    Marques, Ana C.
    Reichert, Andreas S.
    Kaessmann, Henrik
    [J]. PLOS GENETICS, 2008, 4 (08):
  • [96] Birth and rapid subcellular adaptation of a hominoid-specific CDC14 protein
    Rosso, Lia
    Marques, Ana Claudia
    Weier, Manuela
    Lambert, Nelle
    Lambot, Marie-Alexandra
    Vanderhaeghen, Pierre
    Kaessmann, Henrik
    [J]. PLOS BIOLOGY, 2008, 6 (06): : 1281 - 1291
  • [97] Unique chromatin remodeling and transcriptional regulation in spermatogenesis
    Sassone-Corsi, P
    [J]. SCIENCE, 2002, 296 (5576) : 2176 - 2178
  • [98] Cyclophilin A retrotransposition into TRIM5 explains owl monkey resistance to HIV-1
    Sayah, DM
    Sokolskaja, E
    Berthoux, L
    Luban, J
    [J]. NATURE, 2004, 430 (6999) : 569 - 573
  • [99] Role of retrotransposon-derived imprinted gene, Rtl1, in the feto-maternal interface of mouse placenta
    Sekita, Yoichi
    Wagatsuma, Hirotaka
    Nakamura, Kenji
    Ono, Ryuichi
    Kagami, Masayo
    Wakisaka, Noriko
    Hino, Toshiaki
    Suzuki-Migishima, Rika
    Kohda, Takashi
    Ogura, Atsuo
    Ogata, Tsutomu
    Yokoyama, Minesuke
    Kaneko-Ishino, Tomoko
    Ishino, Fumitoshi
    [J]. NATURE GENETICS, 2008, 40 (02) : 243 - 248
  • [100] Mouse segmental duplication and copy number variation
    She, Xinwei
    Cheng, Ze
    Zoellner, Sebastian
    Church, Deanna M.
    Eichler, Evan E.
    [J]. NATURE GENETICS, 2008, 40 (07) : 909 - 914