This $588,514 Project Grant awarded by the National Institute of Allergy and Infectious Diseases (NIAID) under the Allergy and Infectious Diseases Research program (CFDA 93.855) aims to develop new tools for improving mosquito population suppression technologies in Aedes aegypti, a key disease vector. The key focus areas include: Evaluating conditional and sex-specific lethal systems that can restrict lethal transgene expression to reduce fitness load on the mosquito population. This includes...
This Project Grant award of $699,814 from the National Institute of Allergy and Infectious Diseases (NIAID) under CFDA 93.855 - Allergy and Infectious Diseases Research, aims to study molecular mechanisms of Plasmodium parasite invasion in Anopheles mosquito midguts to identify novel targets for transmission-blocking malaria vaccines. The key products and services to be delivered under this award include: Functional characterization of identified mosquito and parasite proteins that mediate...
This Project Grant award from the National Institute of Allergy and Infectious Diseases (NIAID) under the Allergy and Infectious Diseases Research program (CFDA 93.855) provides $832,071 to Seattle Children's Hospital to develop a universal transmission-blocking vaccine against malaria. The key products and services to be delivered include: Developing potent transmission-reducing monoclonal antibodies that can block vector infection across Plasmodium falciparum and Plasmodium vivax species. This...
This Project Grant award of $211,038 from the National Institute of Allergy and Infectious Diseases (NIAID) under the Allergy and Infectious Diseases Research program (CFDA 93.855) supports research at The Johns Hopkins University to investigate a new strategy for controlling mosquito populations. The key focus is on targeting the enzyme iodotyrosine deiodinase, which plays a critical role in protecting insects like fruit flies from the accumulation of harmful halotyrosines that can suppress...
This Project Grant award from the National Institute of Allergy and Infectious Diseases (CFDA 93.855 - Allergy and Infectious Diseases Research) provides $406,450 to support research aimed at establishing continuous in vitro culture and genetic engineering of the Plasmodium vivax malaria parasite. The key objectives are to: 1) optimize the production of reticulocytes (young red blood cells) to serve as host cells for P. vivax growth, 2) iteratively optimize culture conditions in a custom...
This federal Project Grant award from the National Institute of Allergy and Infectious Diseases (NIAID), under the Allergy and Infectious Diseases Research program (CFDA 93.855), provides $813,160 to George Washington University to develop mRNA-LNP combination vaccines targeting multiple stages and species of the human malaria parasite. The grant aims to evaluate the protective efficacy of various vaccine antigens, including PFS25, PFS230, PFCSP, PVS25, and a chimeric PVCSP, both individually...
This Project Grant award from the National Institute of Allergy and Infectious Diseases (CFDA 93.855 - Allergy and Infectious Diseases Research) supports research to develop new malaria vaccine candidates based on the Pf Glutamic Acid Rich Protein (PFGARP) antigen. The $412,500 award will be used by the University of South Florida to evaluate immunodominant fragments of PFGARP for potential inclusion in a malaria vaccine, with a focus on improving efficacy against the deadly Plasmodium...
This Cooperative Agreement award from the National Institute of Allergy and Infectious Diseases (NIAID), under the Allergy and Infectious Diseases Research program (CFDA 93.855), provides $606,815.00 to Duquesne University to develop field-ready paratransgenic bacterial strains that can interfere with the ability of mosquitoes to transmit malaria parasites. The project aims to engineer Asaia bogorensis strains that are optimized for anti-Plasmodium performance, resistance to horizontal transfer,...
The National Institute of Allergy and Infectious Diseases (NIAID) awarded a $738,445 Project Grant (CFDA 93.855 - Allergy and Infectious Diseases Research) to Drexel University to develop an mRNA-based multivalent malaria vaccine. The project aims to optimize mRNA vaccine-induced antibody-mediated and cell-mediated immune responses targeting pre-erythrocytic and blood-stage malaria parasites. Specifically, the grant will support the design, production, and evaluation of mRNA vaccine candidates...
This federal Project Grant award from the National Institute of Allergy and Infectious Diseases (NIAID), under the Allergy and Infectious Diseases Research program (CFDA 93.855), provides $441,502 to the University of Texas Health Science Center at Houston (UTHealth) to advance CRISPR-based genome editing strategies for managing Aedes aegypti mosquito populations. The key objectives are to: 1) design a CAS12 temperature-dependent system that requires only one strain to produce sterile male...
CONDITIONAL MALE LETHAL ANOPHELES STEPHENSI LINE FOR THE EFFICIENT MANUFACTURE OF MALARIA VACCINES - PROJECT ABSTRACT IN 2020 MALARIA CASES (241M) AND DEATHS (627,000) REACHED THE HIGHEST SINCE 2012 EMPHASIZING THE URGENT NEED FOR NEW TOOLS FOR PREVENTION, CONTROL, AND ELIMINATION OF THIS DISEASE. SANARIA'S PLASMODIUM FALCIPARUM (PF) SPOROZOITE (SPZ) VACCINE, COMPOSED OF RADIATION ATTENUATED PFSPZ ADMINISTERED BY INTRAVENOUS INJECTION, ASSESSED IN 1740 SUBJECTS AGED 5 MONTHS TO 61 YEARS IN 6 COUNTRIES IN US, EUROPE AND AFRICA, IS SAFE AND PROTECTIVE FOR 18 MONTHS IN AFRICA, WHILE PFSPZ-CVAC (CHEMO-ATTENUATED) CONFERRED 100% PROTECTION AGAINST HETEROLOGOUS CONTROLLED HUMAN MALARIA INFECTION FOR AT LEAST 12 WEEKS. PFSPZ ARE PRODUCED USING ASEPTICALLY REARED FEMALE ANOPHELES STEPHENSI MOSQUITOES. ONLY FEMALES INGEST BLOOD, SO IN THE CURRENT MANUFACTURING PROCESS, ASEPTIC MALE MOSQUITOES ARE SUPERFLUOUS, CONSUMING GROWTH MEDIUM AND OCCUPY SPACE THAT COULD OTHERWISE BE USED FOR PRODUCTION OF MORE FEMALES AT NO ADDITIONAL COST OR EFFORT. IN THIS PROJECT WE PLAN TO MAKE THE ASEPTIC MOSQUITO REARING PROCESS 2-FOLD MORE EFFICIENT (REDUCING COSTS OF VACCINE MANUFACTURE BY 10-15%) BY REMOVING MALE MOSQUITOES FROM THE SYSTEM AT THE EMBRYONIC STAGE. THIS WILL BE ACHIEVED BY CREATING A MOSQUITO LINE IN WHICH MALES ARE CONDITIONALLY EXPRESSING A LETHAL INSECT-SPECIFIC HYBRID TOXIN, ORIGINALLY PRODUCED BY SPIDERS. THE LETHALITY WILL BE INDUCED ON A SWITCH, USING THE TETRACYCLINE-CONTROLLED GENE EXPRESSION SYSTEM. IN OUR SPECIFIC AIMS WE WILL: 1. ESTABLISH A DRIVER LINE: A TRANSGENIC A. STEPHENSI LINE CARRYING THE TET-ON TRANSACTIVATOR (RTTA). A TRANSGENIC LINE WILL BE CREATED BY INSERTING THE RTTA, UNDER THE TIGHT CONTROL OF THE VASA PROMOTER, WHICH IS EXPRESSED IN THE FIRST FEW HOURS AFTER EGG LAYING. THE CONSTRUCT WILL BE INSERTED USING PIGGYBAC-BASED GERMLINE MODIFICATION. IN THE ABSENCE OF DOXYCYCLINE, RTTA SHOULD NOT BIND TO THE TETRACYCLINE RESPONSIVE ELEMENT (TRE) AND THUS THE LETHAL GENE WILL BE INACTIVE WHEN EXPRESSION IS NOT WANTED. 2. ESTABLISH A Y-LINKED DOCKING A. STEPHENSI LINE. WE HAVE IDENTIFIED SPECIFIC Y-CHROMOSOME GENOMIC LOCI WHICH CAN BE USED TO TARGET INTEGRATION OF THE LOCUS OF X (LOX) DOCKING SITES. RFP UNDER THE 3XP3 PROMOTER, FLANKED BY TWO LOX SITES WILL BE INTRODUCED TO THE IDENTIFIED Y SEQUENCES USING CRISPR-CAS9 MEDIATED HOMOLOGY-DERIVED REPAIR. 3. ESTABLISH AN EFFECTOR LINE: A. STEPHENSI CARRYING Y-LINKED SPIDER HYBRID TOXIN UNDER THE CONTROL OF THE TETRACYCLINE RESPONSE ELEMENT (TRE). THE Y-LINKED DOCKING LINE WILL BE USED TO INTEGRATE A GENE CASSETTE CONTAINING TRE, MINIMAL PROMOTER AND THE HYBRID TOXIN VIA LOX SITES USING THE CRE/LOX RECOMBINASE-MEDIATED CASSETTE EXCHANGE. IN THIS TRANSGENIC LINE THE LETHAL HYBRID TOXIN WILL BE EXPRESSED ONLY IN MALE MOSQUITOES WHEN BOTH DOXYCYCLINE AND RTTA ARE AVAILABLE; IN THE ABSENCE OF DOXYCYCLINE AND RTTA NO LETHALITY IS ANTICIPATED. 4. GENERATE A TRANSGENIC CONDITIONAL MALE-LETHAL SEXING STRAIN OF A. STEPHENSI. FEMALES FROM THE DRIVER LINE WILL BE CROSSED WITH MALES FROM THE EFFECTOR LINE. IN THE PROGENITOR MALE EGGS, THE RTTA WILL BIND TO TRE IN THE PRESENCE OF DOXYCYCLINE, DRIVING THE EXPRESSION OF THE TOXIN AND INDUCE MALE LETHALITY, WHILE IN THE ABSENCE OF DOXYCYCLINE BOTH SEXES WILL SURVIVE.