Insect vector-born diseases continue to be a major source of mortality worldwide. The continuous development of new tools to study and combat these diseases and the insects that transmit them is essential. The long term goals of this research program are to develop genetic engineering tools for insects of medical significance to man and to use these new tools to gain a better understanding of the basic biology of insect/pathogen and parasite interactions. These new tools will also be used to develop new genetics-based methods for interfering with insect vector-born disease transmission. This proposal has two principal components - continued development of the Hermes gene vector system to improve its efficiency and host range, and the development of genetic tools to investigate Culex mosquitoes.
The specific aims are to 1) understand the modes of integration used by Hermesin mosquito and how these modes are regulated 2) determine the mechanisms, range and consequences of hAT element interactions in insects, 3) increase the recombination activity of Hermes transposase through protein modification and engineering, 4) develop gene vector and enhancer-trapping tools for Culex mosquitoes. 5) develop a functional anopheline hAT element-based gene vector system.
These aims will be accomplished using genetic and molecular genetic methods.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM048102-09
Application #
6385765
Study Section
Special Emphasis Panel (ZRG1-TMP (01))
Program Officer
Rhoades, Marcus M
Project Start
1992-09-01
Project End
2004-06-30
Budget Start
2001-07-01
Budget End
2002-06-30
Support Year
9
Fiscal Year
2001
Total Cost
$318,200
Indirect Cost
Name
University of MD Biotechnology Institute
Department
Type
Organized Research Units
DUNS #
City
Baltimore
State
MD
Country
United States
Zip Code
21202
Kim, Yu Jung; Hice, Robert H; O'Brochta, David A et al. (2011) DNA sequence requirements for hobo transposable element transposition in Drosophila melanogaster. Genetica 139:985-97
Arensburger, Peter; Hice, Robert H; Zhou, Liqin et al. (2011) Phylogenetic and functional characterization of the hAT transposon superfamily. Genetics 188:45-57
Subramanian, Ramanand A; Cathcart, Laura A; Krafsur, Elliot S et al. (2009) Hermes transposon distribution and structure in Musca domestica. J Hered 100:473-80
O'Brochta, David A; Stosic, Christina D; Pilitt, Kristina et al. (2009) Transpositionally active episomal hAT elements. BMC Mol Biol 10:108
Subramanian, Ramanand A; Akala, Olabiyi O; Adejinmi, Johnson O et al. (2008) Topi, an IS630/Tc1/mariner-type transposable element in the African malaria mosquito, Anopheles gambiae. Gene 423:63-71
Subramanian, Ramanand A; Arensburger, Peter; Atkinson, Peter W et al. (2007) Transposable element dynamics of the hAT element Herves in the human malaria vector Anopheles gambiae s.s. Genetics 176:2477-87
Sethuraman, Nagaraja; Fraser Jr, Malcolm J; Eggleston, Paul et al. (2007) Post-integration stability of piggyBac in Aedes aegypti. Insect Biochem Mol Biol 37:941-51
Warren, W D; Atkinson, P W; O'Brochta, D A (1994) The Hermes transposable element from the house fly, Musca domestica, is a short inverted repeat-type element of the hobo, Ac, and Tam3 (hAT) element family. Genet Res 64:87-97
O'Brochta, D A; Warren, W D; Saville, K J et al. (1994) Interplasmid transposition of Drosophila hobo elements in non-drosophilid insects. Mol Gen Genet 244:9-14