Malaria is one of the major causes of mortality and morbidity worldwide. To continue to formulate new, more effective control strategies, a detailed understanding of the parasite life cycle on the molecular level is critical. The transition from the asexual cycle to sexual differentiation is required for malaria transmission in the field. Once sexual development is initiated, the parasite no longer undergoes asexual replication and dies several days after reaching maturity if not taken up in a blood meal by a mosquito. Once ingested by a mosquito, gametocytes are triggered to emerge from the RBC and, if fertilized, develop into infectious sporozoites. The molecular mechanisms involved in this complex differentiation pathway are largely unknown, although it has been characterized morphologically and several sexual-stage specific proteins have been identified. Antibodies specific for sexual-stage surface molecules, including Pfs230 and Pfs48/45, have been shown to block the ability of the parasite to infect mosquitoes, thus blocking, malaria transmission. These proteins have been studied for many years as vaccine candidates but their actual functions remain unknown. Both Pfs230 and Pfs48/45 are expressed only during sexual differentiation in the human host and through the transition of the parasite into the mosquito midgut. Our hypothesis is that Pfs230 & Pfs48/45 play a significant role in the development of gametocytes into viable fertilized zygotes and that the regulation of their expression is important to their function. As a first step toward the elucidation of the function of Pfs230 & Pfs48/45, their expression will be inhibited by targeted-gone disruption (Specific aim 1) and the effects this has on gametocyte & gamete differentiation will be evaluated (Specific aim 2). Transformed parasites will be selected by drug- resistance, cloned, and analyzed for disruption of each targeted gene. The morphology and gene expression pattern of transformants and wild-type parasites will be compared throughout sexual differentiation. To confirm that any changes observed are due to disruption of the targeted-gene, expression will be restored by complementation and the phenotype reanalyzed. The biological role of Pfs230 & Pfs48/45 is also affected by the time course and level of their expression. To begin to evaluate this, the elements regulating their transcription will be analyzed (Specific aim 3). The time course of MRNA production will be evaluated and the 5' regulatory elements that are involved in stage- specific regulation will be mapped by testing their ability to drive stage-specific expression of chloramphenicol acetyltransferase. The regulatory regions identified will be used to test for nuclear factor binding, to identify similar regions in other genes, and to construct transformation plasmids containing stage-specific, inducible promoters.

Agency
National Institute of Health (NIH)
Institute
National Institute of Allergy and Infectious Diseases (NIAID)
Type
Research Project (R01)
Project #
1R01AI048826-01
Application #
6258486
Study Section
Tropical Medicine and Parasitology Study Section (TMP)
Program Officer
Hall, B Fenton
Project Start
2001-01-01
Project End
2004-12-31
Budget Start
2001-01-01
Budget End
2001-12-31
Support Year
1
Fiscal Year
2001
Total Cost
$258,561
Indirect Cost
Name
Loyola University Chicago
Department
Biology
Type
Schools of Arts and Sciences
DUNS #
City
Chicago
State
IL
Country
United States
Zip Code
60660
Tanaka, Takeshi Q; Deu, Edgar; Molina-Cruz, Alvaro et al. (2013) Plasmodium dipeptidyl aminopeptidases as malaria transmission-blocking drug targets. Antimicrob Agents Chemother 57:4645-52
Eksi, Saliha; Morahan, Belinda J; Haile, Yoseph et al. (2012) Plasmodium falciparum gametocyte development 1 (Pfgdv1) and gametocytogenesis early gene identification and commitment to sexual development. PLoS Pathog 8:e1002964
Eksi, Saliha; Williamson, Kim C (2011) Protein targeting to the parasitophorous vacuole membrane of Plasmodium falciparum. Eukaryot Cell 10:744-52
Rupp, Ingrid; Sologub, Ludmilla; Williamson, Kim C et al. (2011) Malaria parasites form filamentous cell-to-cell connections during reproduction in the mosquito midgut. Cell Res 21:683-96
Morahan, Belinda J; Strobel, Carolyn; Hasan, Uzma et al. (2011) Functional analysis of the exported type IV HSP40 protein PfGECO in Plasmodium falciparum gametocytes. Eukaryot Cell 10:1492-503
Czesny, Beata; Goshu, Samrawit; Cook, James L et al. (2009) The proteasome inhibitor epoxomicin has potent Plasmodium falciparum gametocytocidal activity. Antimicrob Agents Chemother 53:4080-5
Sardá, Vanessa; Kaslow, David C; Williamson, Kim C (2009) Approaches to malaria vaccine development using the retrospectroscope. Infect Immun 77:3130-40
Eksi, Saliha; Suri, Amreena; Williamson, Kim C (2008) Sex- and stage-specific reporter gene expression in Plasmodium falciparum. Mol Biochem Parasitol 160:148-51
Eksi, S; Czesny, B; van Gemert, G-J et al. (2007) Inhibition of Plasmodium falciparum oocyst production by membrane-permeant cysteine protease inhibitor E64d. Antimicrob Agents Chemother 51:1064-70