Javascript must be enabled to continue!
Wolbachia w Stri Blocks Zika Virus Growth at Two Independent Stages of Viral Replication
View through CrossRef
ABSTRACT
Mosquito-transmitted viruses are spread globally and present a great risk to human health. Among the many approaches investigated to limit the diseases caused by these viruses are attempts to make mosquitos resistant to virus infection. Coinfection of mosquitos with the bacterium
Wolbachia pipientis
from supergroup A is a recent strategy employed to reduce the capacity for major vectors in the
Aedes
mosquito genus to transmit viruses, including dengue virus (DENV), Chikungunya virus (CHIKV), and Zika virus (ZIKV). Recently, a supergroup B
Wolbachia w
Stri, isolated from
Laodelphax striatellus
, was shown to inhibit multiple lineages of ZIKV in
Aedes albopictus
cells. Here, we show that
w
Stri blocks the growth of positive-sense RNA viruses DENV, CHIKV, ZIKV, and yellow fever virus by greater than 99.9%.
w
Stri presence did not affect the growth of the negative-sense RNA viruses LaCrosse virus or vesicular stomatitis virus. Investigation of the stages of the ZIKV life cycle inhibited by
w
Stri identified two distinct blocks in viral replication. We found a reduction of ZIKV entry into
w
Stri-infected cells. This was partially rescued by the addition of a cholesterol-lipid supplement. Independent of entry, transfected viral genome was unable to replicate in
Wolbachia
-infected cells. RNA transfection and metabolic labeling studies suggested that this replication defect is at the level of RNA translation, where we saw a 66% reduction in mosquito protein synthesis in
w
Stri-infected cells. This study’s findings increase the potential for application of
w
Stri to block additional arboviruses and also identify specific blocks in viral infection caused by
Wolbachia
coinfection.
IMPORTANCE
Dengue, Zika, and yellow fever viruses are mosquito-transmitted diseases that have spread throughout the world, causing millions of infections and thousands of deaths each year. Existing programs that seek to contain these diseases through elimination of the mosquito population have so far failed, making it crucial to explore new ways of limiting the spread of these viruses. Here, we show that introduction of an insect symbiont,
Wolbachia w
Stri, into mosquito cells is highly effective at reducing yellow fever virus, dengue virus, Zika virus, and Chikungunya virus production. Reduction of virus replication was attributable to decreases in entry and a strong block of virus gene expression at the translational level. These findings expand the potential use of
Wolbachia w
Stri to block viruses and identify two separate steps for limiting virus replication in mosquitos that could be targeted via microbes or other means as an antiviral strategy.
American Society for Microbiology
Title: Wolbachia w
Stri Blocks Zika Virus Growth at Two Independent Stages of Viral Replication
Description:
ABSTRACT
Mosquito-transmitted viruses are spread globally and present a great risk to human health.
Among the many approaches investigated to limit the diseases caused by these viruses are attempts to make mosquitos resistant to virus infection.
Coinfection of mosquitos with the bacterium
Wolbachia pipientis
from supergroup A is a recent strategy employed to reduce the capacity for major vectors in the
Aedes
mosquito genus to transmit viruses, including dengue virus (DENV), Chikungunya virus (CHIKV), and Zika virus (ZIKV).
Recently, a supergroup B
Wolbachia w
Stri, isolated from
Laodelphax striatellus
, was shown to inhibit multiple lineages of ZIKV in
Aedes albopictus
cells.
Here, we show that
w
Stri blocks the growth of positive-sense RNA viruses DENV, CHIKV, ZIKV, and yellow fever virus by greater than 99.
9%.
w
Stri presence did not affect the growth of the negative-sense RNA viruses LaCrosse virus or vesicular stomatitis virus.
Investigation of the stages of the ZIKV life cycle inhibited by
w
Stri identified two distinct blocks in viral replication.
We found a reduction of ZIKV entry into
w
Stri-infected cells.
This was partially rescued by the addition of a cholesterol-lipid supplement.
Independent of entry, transfected viral genome was unable to replicate in
Wolbachia
-infected cells.
RNA transfection and metabolic labeling studies suggested that this replication defect is at the level of RNA translation, where we saw a 66% reduction in mosquito protein synthesis in
w
Stri-infected cells.
This study’s findings increase the potential for application of
w
Stri to block additional arboviruses and also identify specific blocks in viral infection caused by
Wolbachia
coinfection.
IMPORTANCE
Dengue, Zika, and yellow fever viruses are mosquito-transmitted diseases that have spread throughout the world, causing millions of infections and thousands of deaths each year.
Existing programs that seek to contain these diseases through elimination of the mosquito population have so far failed, making it crucial to explore new ways of limiting the spread of these viruses.
Here, we show that introduction of an insect symbiont,
Wolbachia w
Stri, into mosquito cells is highly effective at reducing yellow fever virus, dengue virus, Zika virus, and Chikungunya virus production.
Reduction of virus replication was attributable to decreases in entry and a strong block of virus gene expression at the translational level.
These findings expand the potential use of
Wolbachia w
Stri to block viruses and identify two separate steps for limiting virus replication in mosquitos that could be targeted via microbes or other means as an antiviral strategy.
Related Results
Variable Inhibition of Zika Virus Replication by Different Wolbachia Strains in Mosquito Cell Cultures
Variable Inhibition of Zika Virus Replication by Different Wolbachia Strains in Mosquito Cell Cultures
ABSTRACT
Mosquito-borne arboviruses are a major source of human disease. One strategy to reduce arbovirus disease is to reduce the mosquito's ability to tran...
Wolbachia promotes its own uptake by host cells
Wolbachia promotes its own uptake by host cells
Abstract
Wolbachia pipientis
is an incredibly widespread bacterial symbiont of insects, present in an estimated 25-52% of speci...
Modelling the ecological dynamics of mosquito populations with multiple co-circulating Wolbachia strains
Modelling the ecological dynamics of mosquito populations with multiple co-circulating Wolbachia strains
Abstract
Wolbachia intracellular bacteria successfully reduce the transmissibility of arthropod-borne viruses (arboviruses) when introduced into virus-carrying vectors such...
Wolbachia Natural Infection of Mosquitoes in French Guiana: Prevalence, Distribution, and Genotyping
Wolbachia Natural Infection of Mosquitoes in French Guiana: Prevalence, Distribution, and Genotyping
Wolbachia are the most spread bacterial endosymbionts in the world. These bacteria can manipulate host reproduction or block virus transmission in mosquitoes. For this reason, Wolb...
Identification of Wolbachia Strains in Two Sibling Species of Neoseiulus Predatory Mites and Their Prey
Identification of Wolbachia Strains in Two Sibling Species of Neoseiulus Predatory Mites and Their Prey
Wolbachia screening in mites is necessary for understanding of how their biological functions can be affected, including development of approaches to induce parthenogenesis, making...
Partial elimination of
Wolbachia
in the Asian citrus psyllid,
Diaphorina citri
, increases phytopathogen acquisition and decreases fitness
Partial elimination of
Wolbachia
in the Asian citrus psyllid,
Diaphorina citri
, increases phytopathogen acquisition and decreases fitness
Abstract
Wolbachia
is a maternally inherited intracellular bacterium that infects a wide range of arthropods.
...
Molecular characterization and phylogeny of Wolbachia pipientis in mosquitoes
Molecular characterization and phylogeny of Wolbachia pipientis in mosquitoes
Wolbachia is an intracellular, maternally inherited bacteria that infect a wide variety of arthropods, including several mosquito such as Aedes albopictus, Armigerus, Culex, and Ma...
Economic evaluation of
Wolbachia
deployment in Colombia: A modeling study
Economic evaluation of
Wolbachia
deployment in Colombia: A modeling study
ABSTRACT
Background and Aims
Wolbachia
are bacteria that inhibit dengue virus replicat...

