Multiple structural flavors of RNase P in precursor tRNA processing

被引:4
作者
Sridhara, Sagar [1 ]
机构
[1] Univ Gothenburg, Dept Med Biochem & Cell Biol, Gothenburg, Sweden
基金
美国国家卫生研究院;
关键词
HARP; PRORP; RNase P; structural biology; tRNA processing; MITOCHONDRIAL TRANSFER-RNAS; ARCHAEAL RIBONUCLEASE-P; PYROCOCCUS-HORIKOSHII OT3; ESSENTIAL PROTEIN SUBUNIT; PRE-TRANSFER-RNA; CYTOMEGALOVIRUS GENE-EXPRESSION; EXTERNAL GUIDE SEQUENCES; HIGHER-ORDER STRUCTURES; 4.5; S-RNA; CRYSTAL-STRUCTURE;
D O I
10.1002/wrna.1835
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
The precursor transfer RNAs (pre-tRNAs) require extensive processing to generate mature tRNAs possessing proper fold, structural stability, and functionality required to sustain cellular viability. The road to tRNA maturation follows an ordered process: 5'-processing, 3'-processing, modifications at specific sites, if any, and 3'-CCA addition before aminoacylation and recruitment to the cellular protein synthesis machinery. Ribonuclease P (RNase P) is a universally conserved endonuclease in all domains of life, performing the hydrolysis of pre-tRNA sequences at the 5' end by the removal of phosphodiester linkages between nucleotides at position -1 and +1. Except for an archaeal species: Nanoarchaeum equitans where tRNAs are transcribed from leaderless-position +1, RNase P is indispensable for life and displays fundamental variations in terms of enzyme subunit composition, mechanism of substrate recognition and active site architecture, utilizing in all cases a two metal ion-mediated conserved catalytic reaction. While the canonical RNA-based ribonucleoprotein RNase P has been well-known to occur in bacteria, archaea, and eukaryotes, the occurrence of RNA-free protein-only RNase P in eukaryotes and RNA-free homologs of Aquifex RNase P in prokaryotes has been discovered more recently. This review aims to provide a comprehensive overview of structural diversity displayed by various RNA-based and RNA-free RNase P holoenzymes towards harnessing critical RNA-protein and protein-protein interactions in achieving conserved pre-tRNA processing functionality. Furthermore, alternate roles and functional interchangeability of RNase P are discussed in the context of its employability in several clinical and biotechnological applications.
引用
收藏
页数:41
相关论文
共 361 条
  • [1] A role of human RNase P subunits, Rpp29 and Rpp21, in homology directed-repair of double-strand breaks
    Abu-Zhayia, Enas R.
    Khoury-Haddad, Hanan
    Guttmann-Raviv, Noga
    Serruya, Raphael
    Jarrous, Nayef
    Ayoub, Nabieh
    [J]. SCIENTIFIC REPORTS, 2017, 7
  • [2] RIBONUCLEASE-E PROVIDES SUBSTRATES FOR RIBONUCLEASE P-DEPENDENT PROCESSING OF A POLYCISTRONIC MESSENGER-RNA
    ALIFANO, P
    RIVELLINI, F
    PISCITELLI, C
    ARRAIANO, CM
    BRUNI, CB
    CARLOMAGNO, MS
    [J]. GENES & DEVELOPMENT, 1994, 8 (24) : 3021 - 3031
  • [3] TYROSINE TRANSFER RNA PRECURSOR MOLECULE POLYNUCLEOTIDE SEQUENCE
    ALTMAN, S
    SMITH, JD
    [J]. NATURE-NEW BIOLOGY, 1971, 233 (36): : 35 - &
  • [4] The road to RNase P
    Altman, S
    [J]. NATURE STRUCTURAL BIOLOGY, 2000, 7 (10) : 827 - 828
  • [5] RNase P cleaves transient structures in some riboswitches
    Altman, S
    Wesolowski, D
    Guerrier-Takada, C
    Li, Y
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2005, 102 (32) : 11284 - 11289
  • [6] A view of RNase P
    Altman, Sidney
    [J]. MOLECULAR BIOSYSTEMS, 2007, 3 (09) : 604 - 607
  • [7] Ribonuclease P
    Altman, Sidney
    [J]. PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 2011, 366 (1580) : 2936 - 2941
  • [8] Solution Structure of Pyrococcus furiosus RPP21, a Component of the Archaeal RNase P Holoenzyme, and Interactions with Its RPP29 Protein Partner
    Amero, Carlos D.
    Boomershine, William P.
    Xu, Yiren
    Foster, Mark
    [J]. BIOCHEMISTRY, 2008, 47 (45) : 11704 - 11710
  • [9] Anantharaman Vivek, 2006, RNA Biol, V3, P18
  • [10] Characterization of RNase P holoenzymes from Methanococcus jannaschii and Methanothermobacter thermoautotrophicus
    Andrews, AJ
    Hall, TA
    Brown, JW
    [J]. BIOLOGICAL CHEMISTRY, 2001, 382 (08) : 1171 - 1177