Fungal metabolites block malaria transmission
Fungal metabolites block malaria transmission
批准号:
10200641
负责人:
Jun Li
金额:
$43.53万
依托单位国家:
美国
项目类别:
财政年份:
2017
资助国家:
美国
项目状态:
已结题
起止时间:
2017-07-15 至 2024-06-30
关键词:
AfricaAnopheles GenusAntibodiesAntimalarialsAreaBindingBiochemicalBiological AssayBloodCandidate Disease GeneCellsCessation of lifeChemicalsChromatographyCircular Dichroism SpectroscopyClinicalCodeCommunitiesCommunity HealthComputer AnalysisCrude ExtractsCulicidaeDataDevelopmentDiseaseDouble-Stranded RNADrug TargetingDrug resistanceEffectivenessEnzyme-Linked Immunosorbent AssayExhibitsGene ExpressionGenesGenomeGenomic SegmentGenomicsGoalsImmunofluorescence ImmunologicIndividualInfectionInsectaInsecticide ResistanceKenyaKnowledgeLibrariesMalariaMalaria VaccinesMapsMass Spectrum AnalysisMediatingMidgutMolecularMolecular BiologyMolecular TargetNMR SpectroscopyNamesNatural ProductsOocystsParasitesParasitic infectionPathway interactionsPeptide HydrolasesPlasmidsPlasmodiumPlasmodium falciparumPopulationProcessProteinsPublic HealthReagentRecombinantsReportingResourcesRoleSNP genotypingSamplingStatistical Data InterpretationStructureWorkbasecomputational pipelinesdrug developmentfightinggene discoverygene productimmunogenicityinsightmalaria infectionmalaria mosquitomalaria transmissionnovelnovel strategiesparasite invasionpathogensmall moleculesuccesstransmission processvectorvector competencevector mosquito
中文摘要
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英文摘要
ABSTRACT
Malaria remains one of the most deadly diseases in the world, killing nearly a million people each year. Malaria
is hard to control because the immunogenicity of malaria pathogens is very poor, which has made it hard to
generate anti-malaria vaccines. The fast spread of insecticide-resistance in mosquito populations and drug-
resistance of Plasmodium parasites further serves to increase the rate of malaria transmission. Therefore,
there is critical need for the development of novel approaches for malaria control. Since malaria transmission
depends on Plasmodium infected mosquitoes, inhibiting parasite infection in mosquitoes represents a novel
and practical way to break malaria transmission. At present, most transmission-blocking studies focus on
parasite gametocytes in blood with limited success because gametocytes are strongly resistant to drugs.
However, very few efforts have been taken to use compounds against mosquito proteins to block malaria
transmission. We recently identified the FREP1 gene in wild An. gambiae from malaria endemic areas in
Kenya through association studies. Molecular and biochemical analyses revealed that the FREP1 protein
mediates the invasion of multiple species of Plasmodium parasites in mosquito midguts through direct
interaction with parasites. Based on these findings, we have developed a new high throughput platform to
screen a library of natural fungal extracts targeting FREP1, which enabled our team to identify a bioactive
compound named P-orlandin that significantly inhibits P. falciparum infection in mosquitoes. Based on these
preliminary studies, we hypothesize that small compounds interfere with malaria-mosquito interaction will
inhibit malaria transmission. Since multi-pathways involve Plasmodium invasion in mosquitoes, the overarching
goal of this application is developing a novel and effective approach for using multiple fungal natural products
to block malaria transmission by targeting multiple mosquito proteins that mediate parasites invasion in
mosquitoes. We will use our successful collaborative studies as a springboard for identifying additional targets
that mediate parasite transmission, as well as small molecules that disrupt the process of malaria transmission.
Not only will the compounds we find serve as potential leads for field applications, but they will also serve as
essential chemical probes to dissect the molecular biology of the novel pathways we uncover. In this study, we
will identify additional candidate genes through genomic-block assistant-associated studies and verify their
functional relationship with P. falciparum infection in mosquitoes. The candidate gene products that promote
Plasmodium infection in mosquitoes will be chosen as targets to screen for small molecule compounds that
block malaria transmission. This work will provide bioactive compounds that are leads for development of
drugs or spray reagents to block malaria transmission. In addition, this work provides the malaria communities
with new mechanistic insight into Plasmodium transmission to mosquitoes at a molecular level.
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DOI:
10.1186/s13071-021-04677-7
发表时间:
2021-03-24
期刊:
Parasites & vectors
影响因子:
3.2
作者:
[Niu G, Wang X, Hao Y, Kandel S, Niu G, Raptis RG, Li J]
通讯作者:
Li J
DOI:
10.3389/fcimb.2021.654216
发表时间:
2021
期刊:
Frontiers in cellular and infection microbiology
影响因子:
5.7
作者:
[Niu G, Cui Y, Wang X, Keleta Y, Li J]
通讯作者:
Li J
DOI:
10.3390/ph14121238
发表时间:
2021-11-29
期刊:
Pharmaceuticals (Basel, Switzerland)
影响因子:
--
作者:
[Niu G, Kalani K, Wang X, Li J]
通讯作者:
Li J
Crystal Structure Determination and Hirshfeld Analysis of a New Alternariol Packing Polymorph.
新型链格孢醇填充多晶型物的晶体结构测定和赫什菲尔德分析。
DOI:
10.3390/cryst12050579
发表时间:
2022
期刊:
Crystals
影响因子:
2.7
作者:
[Rue,KellyL, Niu,Guodong, Li,Jun, Raptis,RaphaelG]
通讯作者:
Raptis,RaphaelG
DOI:
10.1093/abt/tbad004
发表时间:
2023-04
期刊:
Antibody therapeutics
影响因子:
--
作者:
[Mao, Changchuin, Li, Jun, Feng, Lili, Gao, Wenda]
通讯作者:
Gao, Wenda
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