Molecular Evolution of piRNA and Transposon Control Pathways in Drosophila

被引:44
|
作者
Malone, C. D. [1 ]
Hannon, G. J. [1 ]
机构
[1] Cold Spring Harbor Lab, Howard Hughes Med Inst, Watson Sch Biol Sci, Cold Spring Harbor, NY 11724 USA
来源
基金
美国国家卫生研究院; 美国国家科学基金会;
关键词
PROGRAMMED GENOME REARRANGEMENTS; FREQUENTLY MUTATING CHARACTER; R HYBRID DYSGENESIS; DICER-LIKE PROTEIN; SMALL RNAS; GERM-LINE; MELANOGASTER; ELEMENTS; GYPSY; PIWI;
D O I
10.1101/sqb.2009.74.052
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
The mere prevalence and potential mobilization of transposable elements in eukaryotic genomes present challenges at both the organismal and population levels. Not only is transposition able to alter gene function and chromosomal structure, but loss of control over even a single active element in the germline can create an evolutionary dead end. Despite the dangers of coexistence, transposons and their activity have been shown to drive the evolution of gene function, chromosomal organization, and even population dynamics (Kazazian 2004). This implies that organisms have adopted elaborate means to balance both the positive and detrimental consequences of transposon activity. In this chapter, we focus on the fruit fly to explore some of the molecular clues into the long- and short-term adaptation to transposon colonization and persistence within eukaryotic genomes.
引用
收藏
页码:225 / 234
页数:10
相关论文
共 50 条
  • [21] Transposon molecular domestication and the evolution of the RAG recombinase
    Zhang, Yuhang
    Cheng, Tat Cheung
    Huang, Guangrui
    Lu, Qingyi
    Surleac, Marius D.
    Mandell, Jeffrey D.
    Pontarotti, Pierre
    Petrescu, Andrei J.
    Xu, Anlong
    Xiong, Yong
    Schatz, David G.
    NATURE, 2019, 569 (7754) : 79 - +
  • [22] Transposon molecular domestication and the evolution of the RAG recombinase
    Yuhang Zhang
    Tat Cheung Cheng
    Guangrui Huang
    Qingyi Lu
    Marius D. Surleac
    Jeffrey D. Mandell
    Pierre Pontarotti
    Andrei J. Petrescu
    Anlong Xu
    Yong Xiong
    David G. Schatz
    Nature, 2019, 569 : 79 - 84
  • [23] Transposable Element Misregulation Is Linked to the Divergence between Parental piRNA Pathways in Drosophila Hybrid
    Romero-Soriano, Valeria
    Modolo, Laurent
    Lopez-Maestre, Helene
    Mugat, Bruno
    Pessia, Eugenie
    Chambeyron, Severine
    Vieira, Cristina
    Guerreiro, Maria Pilar Garcia
    GENOME BIOLOGY AND EVOLUTION, 2017, 9 (06): : 1450 - 1470
  • [24] piRNA Biogenesis in Drosophila melanogaster
    Huang, Xiawei
    Toth, Katalin Fejes
    Aravin, Alexei A.
    TRENDS IN GENETICS, 2017, 33 (11) : 882 - 894
  • [25] piRNA Biogenesis and Function in Drosophila
    Siomi, Mikiko
    FASEB JOURNAL, 2020, 34
  • [26] Adaptive evolution of metabolic pathways in Drosophila
    Flowers, J. M.
    Sezgin, E.
    Kumagai, S.
    Duvernell, D. D.
    Matzkin, L. M.
    Schmidt, P. S.
    Eanes, W. F.
    MOLECULAR BIOLOGY AND EVOLUTION, 2007, 24 (06) : 1347 - 1354
  • [27] Evolution of Pheromone Processing Pathways in Drosophila
    Seeholzer, Laura
    Seppo, Max
    Ruta, Vanessa
    CHEMICAL SENSES, 2018, 43 (04) : E10 - E11
  • [28] Piwi Is Required during Drosophila Embryogenesis to License Dual-Strand piRNA Clusters for Transposon Repression in Adult Ovaries
    Akkouche, Abdou
    Mugat, Bruno
    Barckmann, Bridlin
    Varela-Chavez, Carolina
    Li, Blaise
    Raffel, Raoul
    Pelisson, Alain
    Chambeyron, Severine
    MOLECULAR CELL, 2017, 66 (03) : 411 - +
  • [29] The Drosophila HP1 Homolog Rhino Is Required for Transposon Silencing and piRNA Production by Dual-Strand Clusters
    Klattenhoff, Carla
    Xi, Hualin
    Li, Chengjian
    Lee, Soohyun
    Xu, Jia
    Khurana, Jaspreet S.
    Zhang, Fan
    Schultz, Nadine
    Koppetsch, Birgit S.
    Nowosielska, Anetta
    Seitz, Herve
    Zamore, Phillip D.
    Weng, Zhiping
    Theurkauf, William E.
    CELL, 2009, 138 (06) : 1137 - 1149
  • [30] piRNA-guided transposon cleavage initiates Zucchini-dependent, phased piRNA production
    Han, Bo W.
    Wang, Wei
    Li, Chengjian
    Weng, Zhiping
    Zamore, Phillip D.
    SCIENCE, 2015, 348 (6236) : 817 - 821