Literature DB >> 10823853

A yeast-based genetic system for functional analysis of viral mRNA capping enzymes.

C K Ho1, A Martins, S Shuman.   

Abstract

Virus-encoded mRNA capping enzymes are attractive targets for antiviral therapy, but functional studies have been limited by the lack of genetically tractable in vivo systems that focus exclusively on the RNA-processing activities of the viral proteins. Here we have developed such a system by engineering a viral capping enzyme-vaccinia virus D1(1-545)p, an RNA triphosphatase and RNA guanylyltransferase-to function in the budding yeast Saccharomyces cerevisiae in lieu of the endogenous fungal triphosphatase (Cet1p) and guanylyltransferase (Ceg1p). This was accomplished by fusion of D1(1-545)p to the C-terminal guanylyltransferase domain of mammalian capping enzyme, Mce1(211-597)p, which serves as a vehicle to target the viral capping enzyme to the RNA polymerase II elongation complex. An inactivating mutation (K294A) of the mammalian guanylyltransferase active site in the fusion protein had no impact on genetic complementation of cet1Deltaceg1Delta cells, thus proving that (i) the viral guanylyltransferase was active in vivo and (ii) the mammalian domain can serve purely as a chaperone to direct other proteins to the transcription complex. Alanine scanning had identified five amino acids of vaccinia virus capping enzyme-Glu37, Glu39, Arg77, Glu192, and Glu194-that are essential for gamma phosphate cleavage in vitro. Here we show that the introduction of mutation E37A, R77A, or E192A into the fusion protein abrogates RNA triphosphatase function in vivo. The essential residues are located within three motifs that define a family of viral and fungal metal-dependent phosphohydrolases with a distinctive capacity to hydrolyze nucleoside triphosphates to nucleoside diphosphates in the presence of manganese or cobalt. The acidic residues Glu37, Glu39, and Glu192 likely comprise the metal-binding site of vaccinia virus triphosphatase, insofar as their replacement by glutamine abolishes the RNA triphosphatase and ATPase activities.

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Year:  2000        PMID: 10823853      PMCID: PMC112033          DOI: 10.1128/jvi.74.12.5486-5494.2000

Source DB:  PubMed          Journal:  J Virol        ISSN: 0022-538X            Impact factor:   5.103


  62 in total

1.  Guanylyltransferase activity of the LEF-4 subunit of baculovirus RNA polymerase.

Authors:  L A Guarino; J Jin; W Dong
Journal:  J Virol       Date:  1998-12       Impact factor: 5.103

2.  The LEF-4 subunit of baculovirus RNA polymerase has RNA 5'-triphosphatase and ATPase activities.

Authors:  J Jin; W Dong; L A Guarino
Journal:  J Virol       Date:  1998-12       Impact factor: 5.103

3.  5'-Capping enzymes are targeted to pre-mRNA by binding to the phosphorylated carboxy-terminal domain of RNA polymerase II.

Authors:  S McCracken; N Fong; E Rosonina; K Yankulov; G Brothers; D Siderovski; A Hessel; S Foster; S Shuman; D L Bentley
Journal:  Genes Dev       Date:  1997-12-15       Impact factor: 11.361

4.  mRNA capping enzyme is recruited to the transcription complex by phosphorylation of the RNA polymerase II carboxy-terminal domain.

Authors:  E J Cho; T Takagi; C R Moore; S Buratowski
Journal:  Genes Dev       Date:  1997-12-15       Impact factor: 11.361

5.  Origins of mRNA identity: capping enzymes bind to the phosphorylated C-terminal domain of RNA polymerase II.

Authors:  S Shuman
Journal:  Proc Natl Acad Sci U S A       Date:  1997-11-25       Impact factor: 11.205

6.  Mammalian capping enzyme complements mutant Saccharomyces cerevisiae lacking mRNA guanylyltransferase and selectively binds the elongating form of RNA polymerase II.

Authors:  Z Yue; E Maldonado; R Pillutla; H Cho; D Reinberg; A J Shatkin
Journal:  Proc Natl Acad Sci U S A       Date:  1997-11-25       Impact factor: 11.205

7.  The guanylyltransferase domain of mammalian mRNA capping enzyme binds to the phosphorylated carboxyl-terminal domain of RNA polymerase II.

Authors:  C K Ho; V Sriskanda; S McCracken; D Bentley; B Schwer; S Shuman
Journal:  J Biol Chem       Date:  1998-04-17       Impact factor: 5.157

8.  Isolation and characterization of a human cDNA for mRNA 5'-capping enzyme.

Authors:  T Yamada-Okabe; R Doi; O Shimmi; M Arisawa; H Yamada-Okabe
Journal:  Nucleic Acids Res       Date:  1998-04-01       Impact factor: 16.971

9.  Genetic, physical, and functional interactions between the triphosphatase and guanylyltransferase components of the yeast mRNA capping apparatus.

Authors:  C K Ho; B Schwer; S Shuman
Journal:  Mol Cell Biol       Date:  1998-09       Impact factor: 4.272

10.  Mammalian capping enzyme binds RNA and uses protein tyrosine phosphatase mechanism.

Authors:  Y Wen; Z Yue; A J Shatkin
Journal:  Proc Natl Acad Sci U S A       Date:  1998-10-13       Impact factor: 11.205

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  13 in total

Review 1.  In vitro capping and transcription of rhabdoviruses.

Authors:  Tomoaki Ogino
Journal:  Methods       Date:  2012-06-08       Impact factor: 3.608

2.  A yeast-like mRNA capping apparatus in Plasmodium falciparum.

Authors:  C K Ho; S Shuman
Journal:  Proc Natl Acad Sci U S A       Date:  2001-03-06       Impact factor: 11.205

3.  Crystal structure of vaccinia virus mRNA capping enzyme provides insights into the mechanism and evolution of the capping apparatus.

Authors:  Otto J P Kyrieleis; Jonathan Chang; Marcos de la Peña; Stewart Shuman; Stephen Cusack
Journal:  Structure       Date:  2014-03-04       Impact factor: 5.006

4.  RNA triphosphatase component of the mRNA capping apparatus of Paramecium bursaria Chlorella virus 1.

Authors:  C K Ho; C Gong; S Shuman
Journal:  J Virol       Date:  2001-02       Impact factor: 5.103

5.  Characterization of Schizosaccharomyces pombe RNA triphosphatase.

Authors:  Y Pei; B Schwer; S Hausmann; S Shuman
Journal:  Nucleic Acids Res       Date:  2001-01-15       Impact factor: 16.971

6.  Divergent subunit interactions among fungal mRNA 5'-capping machineries.

Authors:  Toshimitsu Takagi; Eun-Jung Cho; Rozmin T K Janoo; Vladimir Polodny; Yasutaka Takase; Michael C Keogh; Sue-Ann Woo; Lucille D Fresco-Cohen; Charles S Hoffman; Stephen Buratowski
Journal:  Eukaryot Cell       Date:  2002-06

7.  Mapping the triphosphatase active site of baculovirus mRNA capping enzyme LEF4 and evidence for a two-metal mechanism.

Authors:  Alexandra Martins; Stewart Shuman
Journal:  Nucleic Acids Res       Date:  2003-03-01       Impact factor: 16.971

8.  Characterization of a mimivirus RNA cap guanine-N2 methyltransferase.

Authors:  Delphine Benarroch; Zhicheng R Qiu; Beate Schwer; Stewart Shuman
Journal:  RNA       Date:  2009-02-13       Impact factor: 4.942

9.  Functional screen reveals SARS coronavirus nonstructural protein nsp14 as a novel cap N7 methyltransferase.

Authors:  Yu Chen; Hui Cai; Ji'an Pan; Nian Xiang; Po Tien; Tero Ahola; Deyin Guo
Journal:  Proc Natl Acad Sci U S A       Date:  2009-02-10       Impact factor: 11.205

10.  Yeast-based genetic system for functional analysis of poxvirus mRNA cap methyltransferase.

Authors:  Nayanendu Saha; Stewart Shuman; Beate Schwer
Journal:  J Virol       Date:  2003-07       Impact factor: 5.103

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