Mosquito-borne diseases, such as malaria, filariasis, and dengue, remain significant pathogens of humans and animals and are intractable to control or are resurgent in many areas of the world. Conventional mechanisms have proven to be ineffectual in controlling these diseases. Application of modern molecular tools and approaches should remove the """"""""black box' view of the vector in terms of vectobiology, vector-pathogen interactions, vector competence, and other components of vector-pathogen amplification and maintenance cycles in nature. The long term goal of this research is to exploit such new information concerning vector biology or vector-pathogen interactions to develop novel control strategies for vector-borne diseases, which target the invertebrate vector. In this project, we will exploit viruses that naturally-infect mosquitoes to investigate the molecular biology of vectors and vector-pathogen interactions. Genes and gene produced identified as determinants of malaria and filaria transmission in other projects of this TDRU proposal will be characterized in vitro and in vivo using virus delivery and expression systems. Two viruses will be utilized; Sindbis an Aedes densonucleosis (AeDNV). The SIN virus (Togaviridae) system will be used to stably, """"""""cytoplasmically transform"""""""" mosquito cells and to express or knock out genes, which are potentially determinants of vector-pathogen interactions. Similarly, genes identified as potential targets for development of transgenic, parasite-resistant organisms (or other genes necessitating DNA-based expression systems) will be characterized using the AeDNV (Parvoviridae) expression system. These two virus expression systems provide extremely powerful additions to the armentarium of vector molecular biologists and much useful information concerning the molecular biology of parasite vectors will undoubtedly be forthcoming. These proposed studies will also provide considerable information about the feasibility of developing a new generation of biocontrol agents from control of vectors. The AeDNV expression system provides unique biocontrol potential. ?aroviruses are extremely resistant to environmental degradation, and naturally infect a wide range of vector species. The AeDNV expression system will be used to transduce genes into mosquito larvae that repress host seeking behavior, are mosquitocidal, make vectors incompetent, or inhibit vector host development. Both the AeDNV and the gene products involved (eg -Aedes head peptide, juvenile hormone esterase) are species specific, which is most desirable for biocontrol agents.

Agency
National Institute of Health (NIH)
Institute
National Institute of Allergy and Infectious Diseases (NIAID)
Type
Research Project (R01)
Project #
1R01AI046753-01
Application #
6100309
Study Section
Project Start
1999-06-01
Project End
2000-05-31
Budget Start
1998-10-01
Budget End
1999-09-30
Support Year
1
Fiscal Year
1999
Total Cost
Indirect Cost
Name
Colorado State University-Fort Collins
Department
Type
DUNS #
112617480
City
Fort Collins
State
CO
Country
United States
Zip Code
80523
Lorono-Pino, M A; Farfan-Ale, J A; Blitvich, B J et al. (2009) Evaluation of an epitope-blocking enzyme-linked immunosorbent assay for the diagnosis of West Nile virus infections in humans. Clin Vaccine Immunol 16:749-55
Lozano-Fuentes, Saul; Fernandez-Salas, Ildefonso; de Lourdes Munoz, Maria et al. (2009) The neovolcanic axis is a barrier to gene flow among Aedes aegypti populations in Mexico that differ in vector competence for Dengue 2 virus. PLoS Negl Trop Dis 3:e468
Diaz, Francisco J; Black 4th, William C; Farfan-Ale, Jose A et al. (2006) Dengue virus circulation and evolution in Mexico: a phylogenetic perspective. Arch Med Res 37:760-73
Paterson, Andrew; Robinson, Erin; Suchman, Erica et al. (2005) Mosquito densonucleosis viruses cause dramatically different infection phenotypes in the C6/36 Aedes albopictus cell line. Virology 337:253-61
Foy, B D; Myles, K M; Pierro, D J et al. (2004) Development of a new Sindbis virus transducing system and its characterization in three Culicine mosquitoes and two Lepidopteran species. Insect Mol Biol 13:89-100
Uhlirova, Mirka; Foy, Brian D; Beaty, Barry J et al. (2003) Use of Sindbis virus-mediated RNA interference to demonstrate a conserved role of Broad-Complex in insect metamorphosis. Proc Natl Acad Sci U S A 100:15607-12
Pierro, D J; Myles, K M; Foy, B D et al. (2003) Development of an orally infectious Sindbis virus transducing system that efficiently disseminates and expresses green fluorescent protein in Aedes aegypti. Insect Mol Biol 12:107-16
Cheng, L L; Bartholomay, L C; Olson, K E et al. (2001) Characterization of an endogenous gene expressed in Aedes aegypti using an orally infectious recombinant Sindbis virus. J Insect Sci 1:10
Miura, T A; Carlson, J O; Beaty, B J et al. (2001) Expression of human MxA protein in mosquito cells interferes with LaCrosse virus replication. J Virol 75:3001-3
Ward, T W; Jenkins, M S; Afanasiev, B N et al. (2001) Aedes aegypti transducing densovirus pathogenesis and expression in Aedes aegypti and Anopheles gambiae larvae. Insect Mol Biol 10:397-405

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