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PMID: 15609514 Published · ppublish English Journal Article Review

Development of mouse hepatitis virus and SARS-CoV infectious cDNA constructs.

Current topics in microbiology and immunology ·Vol. 287 ·2005-00-00 ·Pages 229-52

Baric RS, Sims AC

Abstract

The genomes of transmissible gastroenteritis virus (TGEV) and mouse hepatitis virus (MHV) have been generated with a novel construction strategy that allows for the assembly of very large RNA and DNA genomes from a panel of contiguous cDNA subclones. Recombinant viruses generated from these methods contained the appropriate marker mutations and replicated as efficiently as wild-type virus. The MHV cloning strategy can also be used to generate recombinant viruses that contain foreign genes or mutations at virtually any given nucleotide. MHV molecular viruses were engineered to express green fluorescent protein (GFP), demonstrating the feasibility of the systematic assembly approach to create recombinant viruses expressing foreign genes. The systematic assembly approach was used to develop an infectious clone of the newly identified human coronavirus, the serve acute respiratory syndrome virus (SARS-CoV). Our cloning and assembly strategy generated an infectious clone within 2 months of identification of the causative agent of SARS, providing a critical tool to study coronavirus pathogenesis and replication. The availability of coronavirus infectious cDNAs heralds a new era in coronavirus genetics and genomic applications, especially within the replicase proteins whose functions in replication and pathogenesis are virtually unknown.

MeSH Terms
Animals Base Sequence DNA, Complementary/genetics Genome, Viral Humans Mice Molecular Sequence Data Murine hepatitis virus/genetics Recombination, Genetic SARS Virus/genetics Transmissible gastroenteritis virus/genetics
Chemicals
DNA, Complementary
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Baric R S
Department of Epidemiology, University of North Carolina at Chapel Hill, Chapel Hill, NC 27599-7400, USA. rbaric@email.unc.edu
Sims A C
References (47)
47 references, click to expand
  1. The Genome Organization of the Nidovirales: Similarities and Differences between Arteri-, Toro-, and Coronaviruses.
    . 1997 Feb;8(1):33-47 PMID: 32288441
  2. Aminopeptidase N is a major receptor for the entero-pathogenic coronavirus TGEV.
    Nature. 1992 Jun 4;357(6377):417-20 PMID: 1350661
  3. Regeneration of herpesviruses from molecularly cloned subgenomic fragments.
    J Virol. 1988 Jun;62(6):2191-5 PMID: 2835520
  4. A phylogenetically conserved hairpin-type 3' untranslated region pseudoknot functions in coronavirus RNA replication.
    J Virol. 1999 Oct;73(10):8349-55 PMID: 10482585
  5. Genetic evolution and tropism of transmissible gastroenteritis coronaviruses.
    Virology. 1992 Sep;190(1):92-105 PMID: 1326823
  6. Genetic analysis of porcine respiratory coronavirus, an attenuated variant of transmissible gastroenteritis virus.
    J Virol. 1991 Jun;65(6):3369-73 PMID: 1851885
  7. Replication and packaging of transmissible gastroenteritis coronavirus-derived synthetic minigenomes.
    J Virol. 1999 Feb;73(2):1535-45 PMID: 9882359
  8. Targeted recombination within the spike gene of murine coronavirus mouse hepatitis virus-A59: Q159 is a determinant of hepatotropism.
    J Virol. 1998 Dec;72(12):9628-36 PMID: 9811696
  9. Genetic complementation among three panels of mouse hepatitis virus gene 1 mutants.
    Virology. 1998 Feb 1;241(1):112-21 PMID: 9454722
  10. Reverse genetics of the largest RNA viruses.
    Adv Virus Res. 1999;53:245-64 PMID: 10582102
  11. Identification of the mutations responsible for the phenotype of three MHV RNA-negative ts mutants.
    Adv Exp Med Biol. 2001;494:453-8 PMID: 11774507
  12. The molecular biology of coronaviruses.
    Adv Virus Res. 1997;48:1-100 PMID: 9233431
  13. In vitro and in vivo expression of foreign genes by transmissible gastroenteritis coronavirus-derived minigenomes.
    J Gen Virol. 2002 Mar;83(Pt 3):567-579 PMID: 11842252
  14. A novel coronavirus associated with severe acute respiratory syndrome.
    N Engl J Med. 2003 May 15;348(20):1953-66 PMID: 12690092
  15. Transcription of infectious yellow fever RNA from full-length cDNA templates produced by in vitro ligation.
    New Biol. 1989 Dec;1(3):285-96 PMID: 2487295
  16. A self-recombining bacterial artificial chromosome and its application for analysis of herpesvirus pathogenesis.
    Proc Natl Acad Sci U S A. 2000 Apr 25;97(9):4873-8 PMID: 10781094
  17. Cooperation of an RNA packaging signal and a viral envelope protein in coronavirus RNA packaging.
    J Virol. 2001 Oct;75(19):9059-67 PMID: 11533169
  18. Engineering mammalian chromosomes.
    Hum Mol Genet. 1998;7(10):1635-40 PMID: 9735385
  19. The transmissible gastroenteritis coronavirus contains a spherical core shell consisting of M and N proteins.
    J Virol. 1996 Jul;70(7):4773-7 PMID: 8676505
  20. Engineering the largest RNA virus genome as an infectious bacterial artificial chromosome.
    Proc Natl Acad Sci U S A. 2000 May 9;97(10):5516-21 PMID: 10805807
  21. Map locations of mouse hepatitis virus temperature-sensitive mutants: confirmation of variable rates of recombination.
    J Virol. 1994 Nov;68(11):7458-66 PMID: 7933129
  22. Feline aminopeptidase N serves as a receptor for feline, canine, porcine, and human coronaviruses in serogroup I.
    J Virol. 1996 Dec;70(12):8669-74 PMID: 8970993
  23. Systematic assembly of a full-length infectious cDNA of mouse hepatitis virus strain A59.
    J Virol. 2002 Nov;76(21):11065-78 PMID: 12368349
  24. Nidovirales: a new order comprising Coronaviridae and Arteriviridae.
    Arch Virol. 1997;142(3):629-33 PMID: 9349308
  25. Importance of the positive-strand RNA secondary structure of a murine coronavirus defective interfering RNA internal replication signal in positive-strand RNA synthesis.
    J Virol. 1998 Oct;72(10):7926-33 PMID: 9733830
  26. Membrane association and dimerization of a cysteine-rich, 16-kilodalton polypeptide released from the C-terminal region of the coronavirus infectious bronchitis virus 1a polyprotein.
    J Virol. 2002 Jun;76(12):6257-67 PMID: 12021359
  27. Heterologous gene expression from transmissible gastroenteritis virus replicon particles.
    J Virol. 2002 Feb;76(3):1422-34 PMID: 11773416
  28. Identification of a novel coronavirus in patients with severe acute respiratory syndrome.
    N Engl J Med. 2003 May 15;348(20):1967-76 PMID: 12690091
  29. Policy forum: genetics. Ethical considerations in synthesizing a minimal genome.
    Science. 1999 Dec 10;286(5447):2087, 2089-90 PMID: 10617419
  30. Infectious transcripts and cDNA clones of RNA viruses.
    Virology. 1994 Feb;198(2):415-26 PMID: 8291226
  31. The complete sequence (22 kilobases) of murine coronavirus gene 1 encoding the putative proteases and RNA polymerase.
    Virology. 1991 Feb;180(2):567-82 PMID: 1846489
  32. Characterisation of a recent virulent transmissible gastroenteritis virus from Britain with a deleted ORF 3a.
    Arch Virol. 1999;144(4):763-70 PMID: 10365166
  33. Reverse genetics system for the avian coronavirus infectious bronchitis virus.
    J Virol. 2001 Dec;75(24):12359-69 PMID: 11711626
  34. Complete genome sequence of transmissible gastroenteritis coronavirus PUR46-MAD clone and evolution of the purdue virus cluster.
    Virus Genes. 2001;23(1):105-18 PMID: 11556396
  35. Reverse genetics with a full-length infectious cDNA of severe acute respiratory syndrome coronavirus.
    Proc Natl Acad Sci U S A. 2003 Oct 28;100(22):12995-3000 PMID: 14569023
  36. Two amino acid changes at the N-terminus of transmissible gastroenteritis coronavirus spike protein result in the loss of enteric tropism.
    Virology. 1997 Jan 20;227(2):378-88 PMID: 9018137
  37. Strategy for systematic assembly of large RNA and DNA genomes: transmissible gastroenteritis virus model.
    J Virol. 2000 Nov;74(22):10600-11 PMID: 11044104
  38. Viral replicase gene products suffice for coronavirus discontinuous transcription.
    J Virol. 2001 Jul;75(14):6676-81 PMID: 11413334
  39. Mouse hepatitis virus strain A59 RNA polymerase gene ORF 1a: heterogeneity among MHV strains.
    Virology. 1994 Feb;198(2):736-40 PMID: 8291254
  40. Retargeting of coronavirus by substitution of the spike glycoprotein ectodomain: crossing the host cell species barrier.
    J Virol. 2000 Feb;74(3):1393-406 PMID: 10627550
  41. Molecular biology of transmissible gastroenteritis virus.
    Vet Microbiol. 1990 Jun;23(1-4):147-54 PMID: 2169670
  42. Genetics of mouse hepatitis virus transcription: evidence that subgenomic negative strands are functional templates.
    J Virol. 1994 Dec;68(12):8169-79 PMID: 7966608
  43. Global transposon mutagenesis and a minimal Mycoplasma genome.
    Science. 1999 Dec 10;286(5447):2165-9 PMID: 10591650
  44. Targeted recombination demonstrates that the spike gene of transmissible gastroenteritis coronavirus is a determinant of its enteric tropism and virulence.
    J Virol. 1999 Sep;73(9):7607-18 PMID: 10438851
  45. Evidence for variable rates of recombination in the MHV genome.
    Virology. 1992 Jul;189(1):88-102 PMID: 1318616
  46. Insertion of a new transcriptional unit into the genome of mouse hepatitis virus.
    J Virol. 1999 Jul;73(7):6128-35 PMID: 10364371
  47. Structure and function of type II restriction endonucleases.
    Nucleic Acids Res. 2001 Sep 15;29(18):3705-27 PMID: 11557805
Article Info
Journal
Current topics in microbiology and immunology
Abbr.
Curr Top Microbiol Immunol
ISSN
0070-217X
Published
2005-00-00
Pages
229-52
Language
English
Region
Germany
NLM ID
0110513
PMCID
PMC7122489
Subset
IM
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