piRNA biogenesis during adult spermatogenesis in mice is independent of the ping-pong mechanism

被引:0
|
作者
Ergin Beyret
Na Liu
Haifan Lin
机构
[1] Yale University School of Medicine,Yale Stem Cell Center and Department of Cell Biology
[2] Duke University Medical School,Department of Cell Biology
来源
Cell Research | 2012年 / 22卷
关键词
MIWI; MILI; piRNA; ping-pong mechanism; spermatogenesis; meiosis;
D O I
暂无
中图分类号
学科分类号
摘要
piRNAs, a class of small non-coding RNAs associated with PIWI proteins, have broad functions in germline development, transposon silencing, and epigenetic regulation. In diverse organisms, a subset of piRNAs derived from repeat sequences are produced via the interplay between two PIWI proteins. This mechanism, termed “ping-pong” cycle, operates among the PIWI proteins of the primordial mouse testis; however, its involvement in postnatal testes remains elusive. Here we show that adult testicular piRNAs are produced independent of the ping-pong mechanism. We identified and characterized large populations of piRNAs in the adult and postnatal developing testes associated with MILI and MIWI, the only PIWI proteins detectable in these testes. No interaction between MILI and MIWI or sequence feature for the ping-pong mechanism among their piRNAs was detected in the adult testis. The majority of MILI- and MIWI-associated piRNAs originate from the same DNA strands within the same loci. Both populations of piRNAs are biased for 5′ Uracil but not for Adenine on the 10th nucleotide position, and display no complementarity. Furthermore, in Miwi mutants, MILI-associated piRNAs are not downregulated, but instead upregulated. These results indicate that the adult testicular piRNAs are predominantly, if not exclusively, produced by a primary processing mechanism instead of the ping-pong mechanism. In this primary pathway, biogenesis of MILI- and MIWI-associated piRNAs may compete for the same precursors; the types of piRNAs produced tend to be non-selectively dictated by the available precursors in the cell; and precursors with introns tend to be spliced before processed into piRNAs.
引用
收藏
页码:1429 / 1439
页数:10
相关论文
共 50 条
  • [31] tRNA-guanine transglycosylase from E-coli:: a ping-pong kinetic mechanism is consistent with nucleophilic catalysis
    Goodenough-Lashua, DM
    Garcia, GA
    BIOORGANIC CHEMISTRY, 2003, 31 (04) : 331 - 344
  • [32] Human mitochondrial carriers of the SLC25 family function as monomers exchanging substrates with a ping-pong kinetic mechanism
    Cimadamore-Werthein, Camila
    King, Martin S.
    Lacabanne, Denis
    Pyrihova, Eva
    Jaiquel Baron, Stephany
    Kunji, Edmund R. S.
    EMBO JOURNAL, 2024, 43 (16): : 3450 - 3465
  • [33] GAMMA-GLUTAMYLTRANSPEPTIDASE-CATALYZED ACYL-TRANSFER TO THE ADDED ACCEPTOR DOES NOT PROCEED VIA THE PING-PONG MECHANISM
    GOLOLOBOV, MY
    BATEMAN, RC
    BIOCHEMICAL JOURNAL, 1994, 304 : 869 - 876
  • [34] Pre-steady-state kinetic studies of rat kidney γ-glutamyl transpeptidase confirm its ping-pong mechanism
    Keillor, JW
    Ménard, A
    Castonguay, R
    Lherbet, C
    Rivard, C
    JOURNAL OF PHYSICAL ORGANIC CHEMISTRY, 2004, 17 (6-7) : 529 - 536
  • [35] ALKYLDIHYDROXYACETONE-P SYNTHASE - SOLUBILIZATION, PARTIAL-PURIFICATION, NEW ASSAY-METHOD, AND EVIDENCE FOR A PING-PONG MECHANISM
    BROWN, AJ
    SNYDER, F
    JOURNAL OF BIOLOGICAL CHEMISTRY, 1982, 257 (15) : 8835 - 8839
  • [36] Kinetic and mechanistic analysis of Trypanosoma cruzi trans-sialidase reveals a classical ping-pong mechanism with acid/base catalysis
    Damager, Iben
    Buchini, Sabrina
    Amaya, Maria F.
    Buschiazzo, Alejandro
    Alzari, Pedro
    Frasch, Alberto C.
    Watts, Andrew
    Withers, Stephen G.
    BIOCHEMISTRY, 2008, 47 (11) : 3507 - 3512
  • [37] PYRUVATE CARBOXYLASE FROM CHICKEN LIVER - STEADY-STATE KINETIC STUDIES INDICATE A 2-SITE PING-PONG MECHANISM
    BARDEN, RE
    SCRUTTON, MC
    UTTER, MF
    FUNG, CH
    JOURNAL OF BIOLOGICAL CHEMISTRY, 1972, 247 (04) : 1323 - +
  • [38] CONFIRMATION OF A PING-PONG MECHANISM FOR S-ADENOSYL-L-METHIONINE - MAGNESIUM PROTOPORPHYRIN METHYLTRANSFERASE OF ETIOLATED WHEAT BY AN EXCHANGE-REACTION
    YEE, WC
    EGLSAER, SJ
    RICHARDS, WR
    BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1989, 162 (01) : 483 - 490
  • [39] Amicyanin Transfers Electrons from Methylamine Dehydrogenase to Cytochrome c-551i via a Ping-Pong Mechanism, not a Ternary Complex
    Meschi, Francesca
    Wiertz, Frank
    Klauss, Linda
    Cavalieri, Chiara
    Blok, Anneloes
    Ludwig, Bernd
    Heering, Hendrik A.
    Merli, Angelo
    Rossi, Gian Luigi
    Ubbink, Marcellus
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2010, 132 (41) : 14537 - 14545
  • [40] NA-CA EXCHANGE - EVIDENCE AGAINST A PING-PONG MECHANISM AND AGAINST A CA POOL IN FERRET RED-BLOOD-CELLS
    MILANICK, MA
    AMERICAN JOURNAL OF PHYSIOLOGY, 1991, 261 (01): : C185 - C193