Literature DB >> 28901837

Minimal requirements for reverse polymerization and tRNA repair by tRNAHis guanylyltransferase.

Riddhi Desai1, Kunmo Kim1, Hanna C Büchsenschütz1, Allan W Chen1, Yumin Bi1, Mitchell R Mann1, Matthew A Turk1, Christina Z Chung1, Ilka U Heinemann1.   

Abstract

tRNAHis guanylyltransferase (Thg1) has unique reverse (3'-5') polymerase activity occurring in all three domains of life. Most eukaryotic Thg1 homologs are essential genes involved in tRNAHis maturation. These enzymes normally catalyze a single 5' guanylation of tRNAHis lacking the essential G-1 identity element required for aminoacylation. Recent studies suggest that archaeal type Thg1, which includes most archaeal and bacterial Thg1 enzymes is phylogenetically distant from eukaryotic Thg1. Thg1 is evolutionarily related to canonical 5'-3' forward polymerases but catalyzes reverse 3'-5'polymerization. Similar to its forward polymerase counterparts, Thg1 encodes the conserved catalytic palm domain and fingers domain. Here we investigate the minimal requirements for reverse polymerization. We show that the naturally occurring minimal Thg1 enzyme from Ignicoccus hospitalis (IhThg1), which lacks parts of the conserved fingers domain, is catalytically active. And adds all four natural nucleotides to RNA substrates, we further show that the entire fingers domain of Methanosarcina acetivorans Thg1 and Pyrobaculum aerophilum Thg1 (PaThg1) is dispensable for enzymatic activity. In addition, we identified residues in yeast Thg1 that play a part in preventing extended polymerization. Mutation of these residues with alanine resulted in extended reverse polymerization. PaThg1 was found to catalyze extended, template dependent tRNA repair, adding up to 13 nucleotides to a truncated tRNAHis substrate. Sequencing results suggest that PaThg1 fully restored the near correct sequence of the D- and acceptor stem, but also produced incompletely and incorrectly repaired tRNA products. This research forms the basis for future engineering efforts towards a high fidelity, template dependent reverse polymerase.

Entities:  

Keywords:  Reverse polymerization; nucleotidyltransferase; protein engineering; tRNA editing; tRNA repair

Mesh:

Substances:

Year:  2017        PMID: 28901837      PMCID: PMC6103667          DOI: 10.1080/15476286.2017.1372076

Source DB:  PubMed          Journal:  RNA Biol        ISSN: 1547-6286            Impact factor:   4.652


  30 in total

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Authors:  C Vieille; G J Zeikus
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2.  Kinetic analysis of 3'-5' nucleotide addition catalyzed by eukaryotic tRNA(His) guanylyltransferase.

Authors:  Brian A Smith; Jane E Jackman
Journal:  Biochemistry       Date:  2011-12-14       Impact factor: 3.162

Review 3.  Doing it in reverse: 3'-to-5' polymerization by the Thg1 superfamily.

Authors:  Jane E Jackman; Jonatha M Gott; Michael W Gray
Journal:  RNA       Date:  2012-03-28       Impact factor: 4.942

Review 4.  Transfer RNA processing in archaea: unusual pathways and enzymes.

Authors:  Ilka U Heinemann; Dieter Söll; Lennart Randau
Journal:  FEBS Lett       Date:  2010-01-21       Impact factor: 4.124

5.  tRNA(His) guanylyltransferase (THG1), a unique 3'-5' nucleotidyl transferase, shares unexpected structural homology with canonical 5'-3' DNA polymerases.

Authors:  Samantha J Hyde; Brian E Eckenroth; Brian A Smith; William A Eberley; Nicholas H Heintz; Jane E Jackman; Sylvie Doublié
Journal:  Proc Natl Acad Sci U S A       Date:  2010-11-08       Impact factor: 11.205

6.  A role for tRNA(His) guanylyltransferase (Thg1)-like proteins from Dictyostelium discoideum in mitochondrial 5'-tRNA editing.

Authors:  Maria G Abad; Yicheng Long; Allison Willcox; Jonatha M Gott; Michael W Gray; Jane E Jackman
Journal:  RNA       Date:  2011-02-09       Impact factor: 4.942

7.  tRNAscan-SE On-line: integrating search and context for analysis of transfer RNA genes.

Authors:  Todd M Lowe; Patricia P Chan
Journal:  Nucleic Acids Res       Date:  2016-05-12       Impact factor: 16.971

8.  Temperature dependent mistranslation in a hyperthermophile adapts proteins to lower temperatures.

Authors:  Michael H Schwartz; Tao Pan
Journal:  Nucleic Acids Res       Date:  2015-12-10       Impact factor: 16.971

9.  Gene silencing in the therapy of influenza and other respiratory diseases: Targeting to RNase P by use of External Guide Sequences (EGS).

Authors:  David H Dreyfus; S Mark Tompkins; Ramsay Fuleihan; Lucy Y Ghoda
Journal:  Biologics       Date:  2007-12

10.  Saccharomyces cerevisiae Thg1 uses 5'-pyrophosphate removal to control addition of nucleotides to tRNA(His.).

Authors:  Brian A Smith; Jane E Jackman
Journal:  Biochemistry       Date:  2014-02-18       Impact factor: 3.162

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  5 in total

1.  Transfer RNA function and evolution.

Authors:  Patrick O'Donoghue; Jiqiang Ling; Dieter Söll
Journal:  RNA Biol       Date:  2018       Impact factor: 4.652

2.  Chemical footprinting and kinetic assays reveal dual functions for highly conserved eukaryotic tRNAHis guanylyltransferase residues.

Authors:  Ashanti O Matlock; Brian A Smith; Jane E Jackman
Journal:  J Biol Chem       Date:  2019-04-18       Impact factor: 5.157

3.  Fidelity of base-pair recognition by a 3'-5' polymerase: mechanism of the Saccharomyces cerevisiae tRNAHis guanylyltransferase.

Authors:  Krishna J Patel; Paul Yourik; Jane E Jackman
Journal:  RNA       Date:  2021-03-31       Impact factor: 5.636

4.  Molecular mechanism of substrate recognition and specificity of tRNAHis guanylyltransferase during nucleotide addition in the 3'-5' direction.

Authors:  Akiyoshi Nakamura; Daole Wang; Yasuo Komatsu
Journal:  RNA       Date:  2018-08-15       Impact factor: 4.942

Review 5.  The Role of 3' to 5' Reverse RNA Polymerization in tRNA Fidelity and Repair.

Authors:  Allan W Chen; Malithi I Jayasinghe; Christina Z Chung; Bhalchandra S Rao; Rosan Kenana; Ilka U Heinemann; Jane E Jackman
Journal:  Genes (Basel)       Date:  2019-03-26       Impact factor: 4.096

  5 in total

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