Literature DB >> 32581095

Zika Virus Subgenomic Flavivirus RNA Generation Requires Cooperativity between Duplicated RNA Structures That Are Essential for Productive Infection in Human Cells.

Horacio M Pallarés1, Guadalupe Soledad Costa Navarro1, Sergio M Villordo1, Fernando Merwaiss2, Luana de Borba1, Maria M Gonzalez Lopez Ledesma1, Diego S Ojeda1, Annabelle Henrion-Lacritick2, Maria A Morales3, Cintia Fabri3, María Carla Saleh2, Andrea V Gamarnik4.   

Abstract

Zika virus (ZIKV) is an emerging flavivirus, mainly transmitted by mosquitoes, which represents a global health threat. A common feature of flavivirus-infected cells is the accumulation of viral noncoding subgenomic RNAs by partial degradation of the viral genome, known as sfRNAs, involved in immune evasion and pathogenesis. Although great effort is being made to understand the mechanism by which these sfRNAs function during infection, the picture of how they work is still incomplete. In this study, we developed new genetic tools to dissect the functions of ZIKV RNA structures for viral replication and sfRNA production in mosquito and human hosts. ZIKV infections mostly accumulate two kinds of sfRNAs, sfRNA1 and sfRNA2, by stalling genome degradation upstream of duplicated stem loops (SLI and SLII) of the viral 3' untranslated region (UTR). Although the two SLs share conserved sequences and structures, different functions have been found for ZIKV replication in human and mosquito cells. While both SLs are enhancers for viral infection in human cells, they play opposite roles in the mosquito host. The dissection of determinants for sfRNA formation indicated a strong cooperativity between SLI and SLII, supporting a high-order organization of this region of the 3' UTR. Using recombinant ZIKV with different SLI and SLII arrangements, which produce different types of sfRNAs or lack the ability to generate these molecules, revealed that at least one sfRNA was necessary for efficient infection and transmission in Aedes aegypti mosquitoes. Importantly, we demonstrate an absolute requirement of sfRNAs for ZIKV propagation in human cells. In this regard, viruses lacking sfRNAs, constructed by deletion of the region containing SLI and SLII, were able to infect human cells but the infection was rapidly cleared by antiviral responses. Our findings are unique for ZIKV, since in previous studies, other flaviviruses with deletions of analogous regions of the genome, including dengue and West Nile viruses, accumulated distinct species of sfRNAs and were infectious in human cells. We conclude that flaviviruses share common strategies for sfRNA generation, but they have evolved mechanisms to produce different kinds of these RNAs to accomplish virus-specific functions.IMPORTANCE Flaviviruses are important emerging and reemerging human pathogens. Understanding the molecular mechanisms for viral replication and evasion of host antiviral responses is relevant to development of control strategies. Flavivirus infections produce viral noncoding RNAs, known as sfRNAs, involved in viral replication and pathogenesis. In this study, we dissected molecular determinants for Zika virus sfRNA generation in the two natural hosts, human cells and mosquitoes. We found that two RNA structures of the viral 3' UTR operate in a cooperative manner to produce two species of sfRNAs and that the deletion of these elements has a profoundly different impact on viral replication in the two hosts. Generation of at least one sfRNA was necessary for efficient Zika virus infection of Aedes aegypti mosquitoes. Moreover, recombinant viruses with different 3' UTR arrangements revealed an essential role of sfRNAs for productive infection in human cells. In summary, we define molecular requirements for Zika virus sfRNA accumulation and provide new ideas of how flavivirus RNA structures have evolved to succeed in different hosts.
Copyright © 2020 American Society for Microbiology.

Entities:  

Keywords:  Zika virus; flavivirus; noncoding RNAs; sfRNAs

Mesh:

Substances:

Year:  2020        PMID: 32581095      PMCID: PMC7459552          DOI: 10.1128/JVI.00343-20

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


  48 in total

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Journal:  Cell Host Microbe       Date:  2008-12-11       Impact factor: 21.023

2.  Molecular characterization of virus-specific RNA produced in the brains of flavivirus-susceptible and -resistant mice after challenge with Murray Valley encephalitis virus.

Authors:  N Urosevic; M van Maanen; J P Mansfield; J S Mackenzie; G R Shellam
Journal:  J Gen Virol       Date:  1997-01       Impact factor: 3.891

3.  Overlapping local and long-range RNA-RNA interactions modulate dengue virus genome cyclization and replication.

Authors:  Luana de Borba; Sergio M Villordo; Nestor G Iglesias; Claudia V Filomatori; Leopoldo G Gebhard; Andrea V Gamarnik
Journal:  J Virol       Date:  2015-01-14       Impact factor: 5.103

4.  Noncoding Subgenomic Flavivirus RNA Is Processed by the Mosquito RNA Interference Machinery and Determines West Nile Virus Transmission by Culex pipiens Mosquitoes.

Authors:  G P Göertz; J J Fros; P Miesen; C B F Vogels; M L van der Bent; C Geertsema; C J M Koenraadt; R P van Rij; M M van Oers; G P Pijlman
Journal:  J Virol       Date:  2016-10-28       Impact factor: 5.103

5.  Zika virus inhibits type-I interferon production and downstream signaling.

Authors:  Anil Kumar; Shangmei Hou; Adriana M Airo; Daniel Limonta; Valeria Mancinelli; William Branton; Christopher Power; Tom C Hobman
Journal:  EMBO Rep       Date:  2016-10-24       Impact factor: 8.807

6.  Dengue subgenomic RNA binds TRIM25 to inhibit interferon expression for epidemiological fitness.

Authors:  Gayathri Manokaran; Esteban Finol; Chunling Wang; Jayantha Gunaratne; Justin Bahl; Eugenia Z Ong; Hwee Cheng Tan; October M Sessions; Alex M Ward; Duane J Gubler; Eva Harris; Mariano A Garcia-Blanco; Eng Eong Ooi
Journal:  Science       Date:  2015-07-02       Impact factor: 47.728

7.  Zika virus noncoding sfRNAs sequester multiple host-derived RNA-binding proteins and modulate mRNA decay and splicing during infection.

Authors:  Daniel Michalski; J Gustavo Ontiveros; Joseph Russo; Phillida A Charley; John R Anderson; Adam M Heck; Brian J Geiss; Jeffrey Wilusz
Journal:  J Biol Chem       Date:  2019-09-13       Impact factor: 5.157

8.  Noncoding flavivirus RNA displays RNA interference suppressor activity in insect and Mammalian cells.

Authors:  Esther Schnettler; Mark G Sterken; Jason Y Leung; Stefan W Metz; Corinne Geertsema; Rob W Goldbach; Just M Vlak; Alain Kohl; Alexander A Khromykh; Gorben P Pijlman
Journal:  J Virol       Date:  2012-10-03       Impact factor: 5.103

9.  Full Genome Sequence and sfRNA Interferon Antagonist Activity of Zika Virus from Recife, Brazil.

Authors:  Claire L Donald; Benjamin Brennan; Stephanie L Cumberworth; Veronica V Rezelj; Jordan J Clark; Marli T Cordeiro; Rafael Freitas de Oliveira França; Lindomar J Pena; Gavin S Wilkie; Ana Da Silva Filipe; Christopher Davis; Joseph Hughes; Margus Varjak; Martin Selinger; Luíza Zuvanov; Ania M Owsianka; Arvind H Patel; John McLauchlan; Brett D Lindenbach; Gamou Fall; Amadou A Sall; Roman Biek; Jan Rehwinkel; Esther Schnettler; Alain Kohl
Journal:  PLoS Negl Trop Dis       Date:  2016-10-05

10.  COMRADES determines in vivo RNA structures and interactions.

Authors:  Omer Ziv; Marta M Gabryelska; Aaron T L Lun; Luca F R Gebert; Jessica Sheu-Gruttadauria; Luke W Meredith; Zhong-Yu Liu; Chun Kit Kwok; Cheng-Feng Qin; Ian J MacRae; Ian Goodfellow; John C Marioni; Grzegorz Kudla; Eric A Miska
Journal:  Nat Methods       Date:  2018-09-10       Impact factor: 28.547

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  11 in total

1.  Cotranslational prolyl hydroxylation is essential for flavivirus biogenesis.

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Journal:  Nature       Date:  2021-08-18       Impact factor: 49.962

Review 2.  RNA regulatory mechanisms that control antiviral innate immunity.

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Journal:  Immunol Rev       Date:  2021-08-17       Impact factor: 12.988

Review 3.  Zika Virus Pathogenesis: A Battle for Immune Evasion.

Authors:  Judith Estévez-Herrera; Silvia Pérez-Yanes; Romina Cabrera-Rodríguez; Daniel Márquez-Arce; Rodrigo Trujillo-González; José-David Machado; Ricardo Madrid; Agustín Valenzuela-Fernández
Journal:  Vaccines (Basel)       Date:  2021-03-22

4.  Recovery of Synthetic Zika Virus Based on Rio-U1 Isolate Using a Genetically Stable Two Plasmid System and cDNA Amplification.

Authors:  Iasmim Silva de Mello; Déberli Ruiz Fernandes; Nathália Dias Furtado; Alexandre Araújo Cunha Dos Santos; Marta Pereira Dos Santos; Ieda Pereira Ribeiro; Lidiane Menezes Souza Raphael; Mônica da Silva Nogueira; Stephanie Oliveira Diaz da Cruz; Adalgiza da Silva Rocha; Pedro Paulo de Abreu Manso; Marcelo Pelajo-Machado; Myrna Cristina Bonaldo
Journal:  Front Microbiol       Date:  2021-02-24       Impact factor: 5.640

5.  Pseudoknot length modulates the folding, conformational dynamics, and robustness of Xrn1 resistance of flaviviral xrRNAs.

Authors:  Xiaolin Niu; Ruirui Sun; Zhifeng Chen; Yirong Yao; Xiaobing Zuo; Chunlai Chen; Xianyang Fang
Journal:  Nat Commun       Date:  2021-11-05       Impact factor: 14.919

6.  Three-dimensional structure of a flavivirus dumbbell RNA reveals molecular details of an RNA regulator of replication.

Authors:  Benjamin M Akiyama; Monica E Graham; Zoe O Donoghue; J David Beckham; Jeffrey S Kieft
Journal:  Nucleic Acids Res       Date:  2021-07-09       Impact factor: 16.971

7.  Disruption of Zika Virus xrRNA1-Dependent sfRNA1 Production Results in Tissue-Specific Attenuated Viral Replication.

Authors:  Hadrian Sparks; Brendan Monogue; Benjamin Akiyama; Jeffrey Kieft; J David Beckham
Journal:  Viruses       Date:  2020-10-18       Impact factor: 5.048

8.  Experimental adaptation of dengue virus 1 to Aedes albopictus mosquitoes by in vivo selection.

Authors:  Rachel Bellone; Sebastian Lequime; Henri Jupille; Giel P Göertz; Fabien Aubry; Laurence Mousson; Géraldine Piorkowski; Pei-Shi Yen; Gaelle Gabiane; Marie Vazeille; Anavaj Sakuntabhai; Gorben P Pijlman; Xavier de Lamballerie; Louis Lambrechts; Anna-Bella Failloux
Journal:  Sci Rep       Date:  2020-10-27       Impact factor: 4.379

Review 9.  Non-Coding RNAs: Strategy for Viruses' Offensive.

Authors:  Alessia Gallo; Matteo Bulati; Vitale Miceli; Nicola Amodio; Pier Giulio Conaldi
Journal:  Noncoding RNA       Date:  2020-09-10

10.  Evaluation in Swine of a Recombinant African Swine Fever Virus Lacking the MGF-360-1L Gene.

Authors:  Elizabeth Ramirez-Medina; Elizabeth A Vuono; Ayushi Rai; Sarah Pruitt; Ediane Silva; Lauro Velazquez-Salinas; James Zhu; Douglas P Gladue; Manuel V Borca
Journal:  Viruses       Date:  2020-10-20       Impact factor: 5.048

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