Jump to content

Wolbachia Blocks Zika In Brazilian Aedes aegypti Mosquitoes - Cell H&M


niman

Recommended Posts

Brief Report

 

Wolbachia Blocks Currently Circulating Zika Virus Isolates in BrazilianAedes aegypti Mosquitoes

Publication stage: In Press Corrected Proof
Open Access
 

Open access funded by Bill & Melinda Gates Foundation

http://www.cell.com/cell-host-microbe/fulltext/S1931-3128(16)30157-3

 

Link to comment
Share on other sites

Highlights

 

  • Mosquitoes harboring Wolbachia were resistant to current circulating Zika virus isolates
  • Zika virus prevalence, intensity, and disseminated infection were reduced
  • Saliva from Wolbachia-harboring mosquitoes did not contain infectious Zika virus
Link to comment
Share on other sites

Summary

The recent association of Zika virus with cases of microcephaly has sparked a global health crisis and highlighted the need for mechanisms to combat the Zika vector, Aedes aegyptimosquitoes. Wolbachia pipientis, a bacterial endosymbiont of insect, has recently garnered attention as a mechanism for arbovirus control. Here we report that Aedes aegypti harboringWolbachia are highly resistant to infection with two currently circulating Zika virus isolates from the recent Brazilian epidemic. Wolbachia-harboring mosquitoes displayed lower viral prevalence and intensity and decreased disseminated infection and, critically, did not carry infectious virus in the saliva, suggesting that viral transmission was blocked. Our data indicate that the use ofWolbachia-harboring mosquitoes could represent an effective mechanism to reduce Zika virus transmission and should be included as part of Zika control strategies.

Link to comment
Share on other sites

Main Text

The mosquito Aedes aegypti, typically linked with dengue (Flaviviridae) (Kyle and Harris, 2008) and chikungunya (Togaviridae) (Morrison, 2014) transmission, is also associated with the alarming spread of Zika virus (ZIKV) (Flaviviridae), a previously obscure arbovirus that has recently gone global (Enserink, 2015). Since 2007, ZIKV infection has been reported in 39 countries worldwide (Martínez de Salazar et al., 2016), including Brazil, where infection was first linked to cases of microcephaly during a large outbreak in 2015 (Mlakar et al., 2016Oliveira Melo et al., 2016). Combined with the implication of the virus in cases of the autoimmune disorder Guillain-Barré syndrome (Araujo et al., 2016), ZIKV has ballooned into a public health crisis.

In the absence of a vaccine, current effective control options are limited to reducing the abundance of mosquito vector populations (Heintze et al., 2007). However, there is a clear need for novel efficacious approaches, given that existing strategies such as insecticides (Maciel-de-Freitas et al., 2014) and larval biological control (Vu et al., 2005) have proven unsustainable and ineffective at halting disease spread (Kyle and Harris, 2008).

After decades of being proposed as a potential means of vector control, the endosymbiotic bacterium Wolbachia, present in an estimated 40% of all known terrestrial insect species (Zug and Hammerstein, 2012), is currently being utilized around the world as part of an innovative approach to control the transmission of dengue (http://www.eliminatedengue.com) and other pathogens (Bourtzis et al., 2014). This is possible because the reproductive parasitism associated withWolbachia infection, typified by cytoplasmic incompatibility (Werren et al., 2008), gives the bacterium the ability to quickly and stably invade host populations (Hoffmann et al., 2011). Critically, the bacterium also blocks the transmission of many important human pathogens in mosquitoes, including Plasmodium and chikungunya (Bian et al., 2013Caragata et al., 2016Moreira et al., 2009), giving it great utility as a control agent.

As many different strains of the bacterium cause this inhibition, we hypothesized that the wMel Wolbachia strain (wMel_Br), currently being utilized as part of dengue control efforts in Brazil, might be able to restrict ZIKV infection and transmission in Ae. aegypti. To that end, we performed experimental infections with two currently circulating ZIKV isolates and used a qRT-PCR-based assay to a quantify ZIKV levels in mosquito tissues and saliva, in order to assess whetherWolbachia could potentially be used to combat the emerging Zika pandemic.

Through experimental infection and transmission assays using two currently circulating Brazilian ZIKV isolates (BRPE243/2015 [BRPE] and SPH/2015 [SPH]) (Faria et al., 2016), we compared ZIKV infection in wMel-infected mosquitoes (wMel_Br) with Wolbachia-uninfected mosquitoes collected in Urca, Rio de Janeiro, Brazil in early 2016 (Br). Due to the regular introduction of F1 Br males (the eggs of field-collected Br mosquitoes) in wMel_Br colony cages over 2 years, both lines had a similar genetic background (see Supplemental Experimental Procedures).

The ZIKVs were isolated in the field in late 2015 and maintained in cell culture, and viral titers were quantified via plaque-forming assay prior to experimental infection (Table 1). In two separate experiments, fresh ZIKV-infected supernatant was harvested from culture, mixed with human blood, and used to orally infectwMel_Br and Br mosquitoes. ZIKV levels were quantified in mosquito heads/thoraces and in abdomens at 7 and 14 days post-infection (dpi) using a TaqMan-based qRT-PCR assay (Figure 1).

Table 1Effects of Wolbachia on ZIKV Prevalence
IsolateZIKV Titer (PFU/mL)Days Post-infectionwMel_BrBrwMel_BrBrwMel_BrBr
Head/Thorax Infection RateAbdomen Infection RateSaliva Infection Rate
BRPE5.0 × 10670655585
14101003510045100
SPH8.7 × 10375953090
1425953095

Ae. aegypti were orally infected with fresh, low-passage ZIKV. Initial viral titer was determined by plaque-forming assay. Saliva infection was only examined for mosquitoes at 14 days post-infection with the BRPE isolate. Infection rates are given as percentages. n = 20 per group unless specified. ZIKV, Zika virus; PFU, plaque-forming units; BRPE, ZIKV/H. sapiens/Brazil/BRPE243/2015; SPH, ZIKV/H. sapiens/Brazil/SPH/2015; wMel_Br, Wolbachia-infected; Br,Wolbachia-uninfected.

 

The prevalence of ZIKV infection was significantly reduced among Wolbachia-infected mosquitoes (Table 1, analysis via Fisher’s exact test, p < 0.0001 unless stated). For the BRPE isolate (Figure 1A), Wolbachia decreased ZIKV prevalence by 35% in abdomens, although there was no significant difference for this tissue (p > 0.05), by 100% in head/thoraces at 7 dpi, and by 65% and 90% at 14 dpi, respectively. For the SPH isolate (Figure 1B), Wolbachia reduced prevalence by 95% and 67% in head/thoraces and abdomens (p = 0.0002), respectively, at 7 dpi, and by 74% and 68% in head/thoraces and abdomens, respectively, at 14 dpi.

Likewise, the intensity of ZIKV infection was greatly reduced in wMel_Br mosquitoes for both tissues and time points (Mann-Whitney U tests, p < 0.0001). Additionally, we observed that median ZIKV titers in the head/thoraces of Br mosquitoes increased over time for both isolates (Mann-Whitney U test; BRPE, p < 0.0001; SPH, p = 0.0094), while there was no such effect in wMel_Br mosquitoes.

Saliva was collected from Br and wMel_Br mosquitoes at 14 dpi, after the 5- to 10-day ZIKV extrinsic incubation period was likely completed (Li et al., 2012), in order to determine if Wolbachia infection also inhibited ZIKV transmission (Figure 1C). We used mosquitoes infected with the BRPE isolate as it had a higher titer in culture (Table 1). ZIKV levels were quantified directly for individual saliva samples using the same qRT-PCR assay. We observed that Wolbachia infection reduced ZIKV prevalence in individual saliva samples by 55% (Fisher’s exact test, p < 0.0001) and median ZIKV copies by approximately 5 logs (Mann-Whitney U test, p < 0.0001).

To determine if the virus in these samples was infectious, a further ten wMel_Br and ten Br saliva samples, from the samples described above, were intrathoracically injected into 8–14 naive Br mosquitoes each (Figure 1D), using a previously described method (Ferguson et al., 2015). The overall mortality rate among injected mosquitoes was 11.93%. The presence or absence of ZIKV infection was determined at 5 dpi in eight mosquitoes injected with each saliva, amounting to a mean proportion sampled of 0.68. Of the 80 mosquitoes injected with Br saliva, 68 (85%) became infected with ZIKV, with all Br saliva samples producing at least one infected mosquito. In contrast, none of the 80 mosquitoes injected with wMel_Br saliva became infected (Fisher’s exact test, p < 0.0001; odds ratio 882.3, 95% CI, 51.3–15187), indicating that while some of the wMel_Br saliva samples did contain detectable ZIKV, we saw no evidence that the saliva contained infectious virus.

There is a clear correlation between the inhibition of pathogens by Wolbachia and bacterial density in insect tissues (Joubert et al., 2016Martinez et al., 2014). In order to determine if there was a link between Wolbachia density and ZIKV prevalence and intensity, we measured total Wolbachia RNA levels in the wMel_Br mosquitoes used in the ZIKV infection assays, using qRT-PCR as described above. We saw that ZIKV infection explained less than 5% of the variance inWolbachia density that was observed between ZIKV-infected and -uninfected wMel_Br mosquitoes at either 7 dpi or 14 dpi and was not a significant predictor (PERMANOVA; p > 0.05). Furthermore, we observed no relationship between Wolbachia density and ZIKV load among wMel_Br mosquitoes that became infected with the virus (Spearman correlation; heads/thoraces, r = 0.5952, p = 0.1323; abdomens, r = −0.01891, p = 0.9210). This suggests that there may not be a direct link between Wolbachia density in individual mosquitoes and ZIKV infection, indicating that the inhibition of ZIKV may arise through other means, indirectly due to the presence of the bacterium (Caragata et al., 2013Moreira et al., 2009Pan et al., 2012Rancès et al., 2012).

Our results indicate that the ability of Wolbachia infection to greatly reduce the capacity of mosquitoes to harbor and transmit a range of medically important pathogens, including the dengue and chikungunya viruses (Caragata et al., 2016Moreira et al., 2009Walker et al., 2011) also extends to ZIKV. While wMel did not completely inhibit ZIKV infection, we observed a similar decrease in prevalence and intensity of infection to that of wMel-infected Ae. aegypti challenged with viremic blood from dengue patients, which was considered sufficient to drastically decrease viral transmission (Ferguson et al., 2015). Additionally, the fact that we did not observe an increase in disseminated ZIKV infection over time, and that ZIKV prevalence and infectivity in wMel_Br mosquito saliva was significantly decreased, may indicate that, as for dengue, wMel extends the ZIKV extrinsic incubation period (Ye et al., 2015). This in turn would likely further decrease overall ZIKV transmission rates, given the small decrease in lifespan associated with wMel infection (Walker et al., 2011).

We observed that the wMel Wolbachia infection in Ae. aegypti greatly inhibited ZIKV infection in mosquito abdomens, and it reduced disseminated infection in heads and thoraces and ZIKV prevalence in mosquito saliva. Most critically, our results suggest that saliva from wMel-infected mosquitoes did not contain infectious virus. That this inhibition occurred for two ZIKV isolates that circulated in Brazil during the 2015 epidemic, and for mosquitoes with a wild-type genetic background, suggests that wMel could greatly reduce ZIKV transmission in field populations of Ae. aegypti, which in turn would likely reduce the frequency of Zika-associated pathology in humans.

Wolbachia can invade and persist in wild mosquito populations (Hoffmann et al., 2014) and represents a relatively low-cost, self-sustaining form of mosquito control that is already being trialed in countries where ZIKV outbreaks have been reported and has recently been recommended by the World Health Organization as a suitable tool to control ZIKV transmission (http://migre.me/tDWVe). It is important to point out that extensive public engagement will be required before releases of Wolbachia-infected mosquitoes can be scaled up for use in other areas. However, the results presented here indicate that wMel-infected Ae. aegyptirepresent a realistic and effective option to combat the ZIKV burden in Brazil and potentially in other countries and should be considered as an integral part of future control efforts.

The work reported in this paper was performed under the oversight of the Committee for Ethics in Research (CEP)/FIOCRUZ (License CEP 732.621).

Author Contributions

Conceptualization, H.L.C.D., M.N.R., and L.A.M.; Methodology, H.L.C.D. F.B.S.D., E.P.C., and L.A.M.; Formal analysis, H.L.C.D. and E.P.C.; Investigation, H.L.C.D.; M.N.R., F.B.S.D., S.B.M., and E.P.C.; Writing—Original Draft, H.L.C.D.; Writing—Review & Editing, H.L.C.D., E.P.C., and L.A.M.; Funding Acquisition, L.A.M; Resources, L.A.M.; Supervision, L.A.M.

Acknowledgments

We are grateful to all members of the Mosquitos Vetores Group (MV—CPqRR/FIOCRUZ), particularly Jéssica Silva, who helped to develop the salivation assay. We thank Dr. Luis Villegas for helpful discussion on statistics and Dr. Alexandre Machado for assistance with viral cultures. The Zika virus isolates were kindly provided by the Department of Virology and Experimental Therapy (Aggeu Magalhães Research Center/FIOCRUZ) and by the Laboratory of Viral Isolation (Evandro Chagas Institute). We thank INCT-EM for the Real-Time PCR machine, and the Brazilian and Australian teams of the Eliminate Dengue program, particularly Prof. Scott L. O’Neill for donating the original wMel line and the Entomology team for providing field mosquito eggs. This work was supported by FAPEMIG, CNPq, CAPES, the Brazilian Ministry of Health (DECIT/SVS), and a grant to Monash University from the Foundation for the National Institutes of Health through the Vector-Based Transmission of Control: Discovery Research (VCTR) program of the Grand Challenges in Global Health Initiatives of the Bill and Melinda Gates Foundation.

Supplemental Information

Edited by niman
Link to comment
Share on other sites

References

Authors

Title

Source

Araujo, L.M., Ferreira, M.L., and Nascimento, O.J.Guillain-Barré syndrome associated with the Zika virus outbreak in Brazil.Arq. Neuropsiquiatr. 201674:253–255
Bian, G., Joshi, D., Dong, Y., Lu, P., Zhou, G., Pan, X., Xu, Y., Dimopoulos, G., and Xi, Z.Wolbachia invades Anopheles stephensi populations and induces refractoriness to Plasmodium infection.
Bourtzis, K., Dobson, S.L., Xi, Z., Rasgon, J.L., Calvitti, M., Moreira, L.A., Bossin, H.C., Moretti, R., Baton, L.A., Hughes, G.L. et al.Harnessing mosquito-Wolbachia symbiosis for vector and disease control.
Caragata, E.P., Rancès, E., Hedges, L.M., Gofton, A.W., Johnson, K.N., O’Neill, S.L., and McGraw, E.A.Dietary cholesterol modulates pathogen blocking by Wolbachia.
Caragata, E.P., Dutra, H.L., and Moreira, L.A.Exploiting intimate relationships: Controlling mosquito-transmitted disease with Wolbachia.
Enserink, M.INFECTIOUS DISEASES. An obscure mosquito-borne disease goes global.Science20153501012–1013
Faria, N.R., Azevedo, Rdo.S., Kraemer, M.U., Souza, R., Cunha, M.S., Hill, S.C., Thézé, J., Bonsall, M.B., Bowden, T.A., Rissanen, I. et al.Zika virus in the Americas: Early epidemiological and genetic findings.
Ferguson, N.M., Kien, D.T., Clapham, H., Aguas, R., Trung, V.T., Chau, T.N., Popovici, J., Ryan, P.A., O’Neill, S.L., McGraw, E.A. et al.Modeling the impact on virus transmission of Wolbachia-mediated blocking of dengue virus infection of Aedes aegypti.
Heintze, C., Velasco Garrido, M., and Kroeger, A.What do community-based dengue control programmes achieve? A systematic review of published evaluations.
Hoffmann, A.A., Montgomery, B.L., Popovici, J., Iturbe-Ormaetxe, I., Johnson, P.H., Muzzi, F., Greenfield, M., Durkan, M., Leong, Y.S., Dong, Y. et al.Successful establishment of Wolbachia in Aedes populations to suppress dengue transmission.
Hoffmann, A.A., Iturbe-Ormaetxe, I., Callahan, A.G., Phillips, B.L., Billington, K., Axford, J.K., Montgomery, B., Turley, A.P., and O’Neill, S.L.Stability of the wMel Wolbachia Infection following invasion into Aedes aegypti populations.
Joubert, D.A., Walker, T., Carrington, L.B., De Bruyne, J.T., Kien, D.H., Hoang, Nle.T., Chau, N.V., Iturbe-Ormaetxe, I., Simmons, C.P., and O’Neill, S.L.Establishment of a Wolbachia Superinfection in Aedes aegyptiMosquitoes as a Potential Approach for Future Resistance Management.PLoS Pathog. 201612:e1005434
Kyle, J.L. and Harris, E.Global spread and persistence of dengue.
Li, M.I., Wong, P.S., Ng, L.C., and Tan, C.H.Oral susceptibility of Singapore Aedes (Stegomyia) aegypti (Linnaeus) to Zika virus.
Maciel-de-Freitas, R., Avendanho, F.C., Santos, R., Sylvestre, G., Araújo, S.C., Lima, J.B., Martins, A.J., Coelho, G.E., and Valle, D.Undesirable consequences of insecticide resistance following Aedes aegypti control activities due to a dengue outbreak.
Martinez, J., Longdon, B., Bauer, S., Chan, Y.S., Miller, W.J., Bourtzis, K., Teixeira, L., and Jiggins, F.M.Symbionts commonly provide broad spectrum resistance to viruses in insects: a comparative analysis of Wolbachia strains.
Martínez de Salazar, P., Suy, A., Sánchez-Montalvá, A., Rodó, C., Salvador, F., and Molina, I.Zika fever.Enferm. Infecc. Microbiol. Clin. 201634247–252
Mlakar, J., Korva, M., Tul, N., Popović, M., Poljšak-Prijatelj, M., Mraz, J., Kolenc, M., Resman Rus, K., Vesnaver Vipotnik, T., Fabjan Vodušek, V. et al.Zika Virus Associated with Microcephaly.
Moreira, L.A., Iturbe-Ormaetxe, I., Jeffery, J.A., Lu, G., Pyke, A.T., Hedges, L.M., Rocha, B.C., Hall-Mendelin, S., Day, A., Riegler, M. et al.Wolbachia symbiont in Aedes aegypti limits infection with dengue, Chikungunya, and Plasmodium.
Morrison, T.E.Reemergence of chikungunya virus.
Oliveira Melo, A.S., Malinger, G., Ximenes, R., Szejnfeld, P.O., Alves Sampaio, S., and Bispo de Filippis, A.M.Zika virus intrauterine infection causes fetal brain abnormality and microcephaly: tip of the iceberg?.
Pan, X., Zhou, G., Wu, J., Bian, G., Lu, P., Raikhel, A.S., and Xi, Z.Wolbachia induces reactive oxygen species (ROS)-dependent activation of the Toll pathway to control dengue virus in the mosquito Aedes aegypti.
Rancès, E., Ye, Y.H., Woolfit, M., McGraw, E.A., and O’Neill, S.L.The relative importance of innate immune priming in Wolbachia-mediated dengue interference.
Vu, S.N., Nguyen, T.Y., Tran, V.P., Truong, U.N., Le, Q.M., Le, V.L., Le, T.N., Bektas, A., Briscombe, A., Aaskov, J.G. et al.Elimination of dengue by community programs using Mesocyclops(Copepoda) against Aedes aegypti in central Vietnam.Am. J. Trop. Med. Hyg. 2005;7267–73
Walker, T., Johnson, P.H., Moreira, L.A., Iturbe-Ormaetxe, I., Frentiu, F.D., Mcmeniman, C.J., Leong, Y.S., Dong, Y., Axford, J., Kriesner, P. et al.The wMel Wolbachia strain blocks dengue and invades caged Aedes aegypti populations.
Werren, J.H., Baldo, L., and Clark, M.E.Wolbachia: master manipulators of invertebrate biology.
Ye, Y.H., Carrasco, A.M., Frentiu, F.D., Chenoweth, S.F., Beebe, N.W., van den Hurk, A.F., Simmons, C.P., O’Neill, S.L., and McGraw, E.A.Wolbachia reduces the transmission potential of dengue-infected Aedes aegypti.
Zug, R. and Hammerstein, P.Still a host of hosts for Wolbachia: analysis of recent data suggests that 40% of terrestrial arthropod species are infected.
Link to comment
Share on other sites

Please sign in to comment

You will be able to leave a comment after signing in



Sign In Now
  • Recently Browsing   0 members

    • No registered users viewing this page.
×
×
  • Create New...