Literature DB >> 31597761

Generation of Recombinant Rotavirus Expressing NSP3-UnaG Fusion Protein by a Simplified Reverse Genetics System.

Asha A Philip1, Jacob L Perry2, Heather E Eaton3, Maya Shmulevitz3, Joseph M Hyser2, John T Patton4.   

Abstract

Rotavirus is a segmented double-stranded RNA (dsRNA) virus that causes severe gastroenteritis in young children. We have established an efficient simplified rotavirus reverse genetics (RG) system that uses 11 T7 plasmids, each expressing a unique simian SA11 (+)RNA, and a cytomegalovirus support plasmid for the African swine fever virus NP868R capping enzyme. With the NP868R-based system, we generated recombinant rotavirus (rSA11/NSP3-FL-UnaG) with a genetically modified 1.5-kb segment 7 dsRNA encoding full-length nonstructural protein 3 (NSP3) fused to UnaG, a 139-amino-acid green fluorescent protein (FP). Analysis of rSA11/NSP3-FL-UnaG showed that the virus replicated efficiently and was genetically stable over 10 rounds of serial passaging. The NSP3-UnaG fusion product was well expressed in rSA11/NSP3-FL-UnaG-infected cells, reaching levels similar to NSP3 levels in wild-type recombinant SA11-infected cells. Moreover, the NSP3-UnaG protein, like functional wild-type NSP3, formed dimers in vivo Notably, the NSP3-UnaG protein was readily detected in infected cells via live-cell imaging, with intensity levels ∼3-fold greater than those of the NSP1-UnaG fusion product of rSA11/NSP1-FL-UnaG. Our results indicate that FP-expressing recombinant rotaviruses can be made through manipulation of the segment 7 dsRNA without deletion or interruption of any of the 12 open reading frames (ORFs) of the virus. Because NSP3 is expressed at higher levels than NSP1 in infected cells, rotaviruses expressing NSP3-based FPs may be more sensitive tools for studying rotavirus biology than rotaviruses expressing NSP1-based FPs. This is the first report of a recombinant rotavirus containing a genetically engineered segment 7 dsRNA.IMPORTANCE Previous studies generated recombinant rotaviruses that express FPs by inserting reporter genes into the NSP1 ORF of genome segment 5. Unfortunately, NSP1 is expressed at low levels in infected cells, making viruses expressing FP-fused NSP1 less than ideal probes of rotavirus biology. Moreover, FPs were inserted into segment 5 in such a way as to compromise NSP1, an interferon antagonist affecting viral growth and pathogenesis. We have identified an alternative approach for generating rotaviruses expressing FPs, one relying on fusing the reporter gene to the NSP3 ORF of genome segment 7. This was accomplished without interrupting any of the viral ORFs, yielding recombinant viruses that likely express the complete set of functional viral proteins. Given that NSP3 is made at moderate levels in infected cells, rotaviruses encoding NSP3-based FPs should be more sensitive probes of viral infection than rotaviruses encoding NSP1-based FPs.
Copyright © 2019 American Society for Microbiology.

Entities:  

Keywords:  African swine fever virus capping enzyme; green fluorescent protein; reverse genetics; rotavirus; viral expression vector

Mesh:

Substances:

Year:  2019        PMID: 31597761      PMCID: PMC6880180          DOI: 10.1128/JVI.01616-19

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


  40 in total

1.  Recognition of the rotavirus mRNA 3' consensus by an asymmetric NSP3 homodimer.

Authors:  Rahul C Deo; Caroline M Groft; K R Rajashankar; Stephen K Burley
Journal:  Cell       Date:  2002-01-11       Impact factor: 41.582

2.  Template recognition and formation of initiation complexes by the replicase of a segmented double-stranded RNA virus.

Authors:  M Alejandra Tortorici; Teresa J Broering; Max L Nibert; John T Patton
Journal:  J Biol Chem       Date:  2003-06-03       Impact factor: 5.157

3.  Atomic model of an infectious rotavirus particle.

Authors:  Ethan C Settembre; James Z Chen; Philip R Dormitzer; Nikolaus Grigorieff; Stephen C Harrison
Journal:  EMBO J       Date:  2010-12-14       Impact factor: 11.598

4.  Effect of intragenic rearrangement and changes in the 3' consensus sequence on NSP1 expression and rotavirus replication.

Authors:  J T Patton; Z Taraporewala; D Chen; V Chizhikov; M Jones; A Elhelu; M Collins; K Kearney; M Wagner; Y Hoshino; V Gouvea
Journal:  J Virol       Date:  2001-03       Impact factor: 5.103

5.  Products of the porcine group C rotavirus NSP3 gene bind specifically to double-stranded RNA and inhibit activation of the interferon-induced protein kinase PKR.

Authors:  J O Langland; S Pettiford; B Jiang; B L Jacobs
Journal:  J Virol       Date:  1994-06       Impact factor: 5.103

6.  Two non-structural rotavirus proteins, NSP2 and NSP5, form viroplasm-like structures in vivo.

Authors:  E Fabbretti; I Afrikanova; F Vascotto; O R Burrone
Journal:  J Gen Virol       Date:  1999-02       Impact factor: 3.891

7.  A Point Mutation in the Rhesus Rotavirus VP4 Protein Generated through a Rotavirus Reverse Genetics System Attenuates Biliary Atresia in the Murine Model.

Authors:  Sujit K Mohanty; Bryan Donnelly; Phylicia Dupree; Inna Lobeck; Sarah Mowery; Jaroslaw Meller; Monica McNeal; Greg Tiao
Journal:  J Virol       Date:  2017-07-12       Impact factor: 5.103

8.  Culturing, storage, and quantification of rotaviruses.

Authors:  Michelle Arnold; John T Patton; Sarah M McDonald
Journal:  Curr Protoc Microbiol       Date:  2009-11

Review 9.  Rotavirus infection.

Authors:  Sue E Crawford; Sasirekha Ramani; Jacqueline E Tate; Umesh D Parashar; Lennart Svensson; Marie Hagbom; Manuel A Franco; Harry B Greenberg; Miguel O'Ryan; Gagandeep Kang; Ulrich Desselberger; Mary K Estes
Journal:  Nat Rev Dis Primers       Date:  2017-11-09       Impact factor: 52.329

10.  Shutdown of interferon signaling by a viral-hijacked E3 ubiquitin ligase.

Authors:  Kaitlin A Davis; John T Patton
Journal:  Microb Cell       Date:  2017-11-03
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  14 in total

1.  Expression of Separate Heterologous Proteins from the Rotavirus NSP3 Genome Segment Using a Translational 2A Stop-Restart Element.

Authors:  Asha A Philip; John T Patton
Journal:  J Virol       Date:  2020-08-31       Impact factor: 5.103

2.  Development of an entirely plasmid-based reverse genetics system for 12-segmented double-stranded RNA viruses.

Authors:  Ryotaro Nouda; Shohei Minami; Yuta Kanai; Takahiro Kawagishi; Jeffery A Nurdin; Moeko Yamasaki; Ryusei Kuwata; Hiroshi Shimoda; Ken Maeda; Takeshi Kobayashi
Journal:  Proc Natl Acad Sci U S A       Date:  2021-10-19       Impact factor: 11.205

3.  An Optimized Reverse Genetics System Suitable for Efficient Recovery of Simian, Human, and Murine-Like Rotaviruses.

Authors:  Liliana Sánchez-Tacuba; Ningguo Feng; Nathan J Meade; Kenneth H Mellits; Philippe H Jaïs; Linda L Yasukawa; Theresa K Resch; Baoming Jiang; Susana López; Siyuan Ding; Harry B Greenberg
Journal:  J Virol       Date:  2020-08-31       Impact factor: 5.103

4.  Reverse genetic engineering of simian rotaviruses with temperature-sensitive lesions in VP1, VP2, and VP6.

Authors:  Emil M Nilsson; Owen M Sullivan; Mackenzie L Anderson; Hannah M Argobright; Taylor M Shue; Francis R Fedowitz; Leslie E W LaConte; Sarah McDonald Esstman
Journal:  Virus Res       Date:  2021-06-17       Impact factor: 6.286

Review 5.  On the stability of sequences inserted into viral genomes.

Authors:  Anouk Willemsen; Mark P Zwart
Journal:  Virus Evol       Date:  2019-11-14

6.  Rescue of Infectious Rotavirus Reassortants by a Reverse Genetics System Is Restricted by the Receptor-Binding Region of VP4.

Authors:  Alexander Falkenhagen; Marno Huyzers; Alberdina A van Dijk; Reimar Johne
Journal:  Viruses       Date:  2021-02-25       Impact factor: 5.048

7.  Rotavirus as an Expression Platform of Domains of the SARS-CoV-2 Spike Protein.

Authors:  Asha Ann Philip; John Thomas Patton
Journal:  Vaccines (Basel)       Date:  2021-05-03

Review 8.  Recent advances in rotavirus reverse genetics and its utilization in basic research and vaccine development.

Authors:  Tirth Uprety; Dan Wang; Feng Li
Journal:  Arch Virol       Date:  2021-07-03       Impact factor: 2.574

9.  Reovirus Low-Density Particles Package Cellular RNA.

Authors:  Timothy W Thoner; Xiang Ye; John Karijolich; Kristen M Ogden
Journal:  Viruses       Date:  2021-06-08       Impact factor: 5.048

10.  Rotavirus as an Expression Platform of the SARS-CoV-2 Spike Protein.

Authors:  Asha A Philip; John T Patton
Journal:  bioRxiv       Date:  2021-02-18
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