Oligosaccharides to Prevent Infectious Diarrhea
Oligosaccharides to Prevent Infectious Diarrhea
批准号:
8259839
负责人:
John Michael McCoy
金额:
$25.83万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2008
资助国家:
美国
项目状态:
已结题
起止时间:
2008-07-03 至 2013-04-30
关键词:
AccountingAchievementAdherenceAdhesivesAgeAnti-Adhesion AgentAnti-Infective AgentsAntibiotic TherapyApplications GrantsAutomobile DrivingBacterial GastroenteritisBacterial InfectionsBenignBindingBioreactorsCampylobacterCampylobacter infectionCampylobacter jejuniCell SurvivalCell surfaceCellsCessation of lifeCheeseChildClinicalCytoplasmDeveloped CountriesDeveloping CountriesDiarrheaDietEngineeringEnzyme PrecursorsEnzymesEpithelialEpitheliumEquilibriumErythromycinEscherichia coliEscherichia coli EHECFermentationFucoseGenesGenomeGlycoproteinsGoalsGrantGrowthGuanosine Diphosphate FucoseHealthHumanHuman MilkHydro-LyasesIn VitroIncidenceInfectionInfection preventionKluyveromycesLigaseLiteratureMannoseMediatingMethodsModelingNorwalk virusOligosaccharidesOralOrganismPathway interactionsPerformancePhasePolysaccharidesPopulationPreventionProceduresProductionProgress ReportsProliferatingQualifyingResearchResearch ActivityResistanceResistance developmentRunningRuralSecretor blood group alpha-2-fucosyltransferaseSmall Business Innovation Research GrantSpecificitySurfaceSystemTestingUnited States Food and Drug AdministrationVaccinesVibrio choleraeViralVirulentYeastsantimicrobial drugcell growthchemical synthesiscommercializationcostdesignefficacy testingenteropathogenic Escherichia colienterotoxigenic Escherichia coligenetic manipulationimprovedin vivomicrobialmortalitynovelpathogenpressurepreventquinolone resistancereceptorresistant strainsugarsugar nucleotidesynthetic enzyme
中文摘要
描述(由申请人提供):病原体与宿主细胞的黏附是感染的第一步,通常由特定的分子相互作用介导[1][2]。霍乱弧菌、致病性大肠杆菌(EPEC)、肠出血性大肠杆菌(EHEC)和诺沃克病毒的致病菌株是人类感染性腹泻的主要细菌和病毒原因[3],它们通过与1(1,2)岩藻糖化细胞受体[4][5]结合,附着在肠道上皮细胞表面。1(1,2)岩藻糖化多糖在体外和体内都被证明能有效地防止这些病原体的结合和感染,它在人类母乳中含量丰富[6][7]。因此,这些分子代表了一种潜在的预防感染性腹泻的新类别的试剂,这种疾病每年导致全球200多万人死亡[8]。然而,生产足够数量的1(1,2)岩藻糖化多糖作为抗感染剂以影响全球腹泻发病率仍然是一个重大挑战。化学合成是可能的,但受到立体特异性问题、产品杂质和高总成本的限制[9][10][11]。体外酶法合成也是可能的,但受限于对昂贵的核苷酸-糖前体的要求。S的宏伟目标是通过微生物发酵低成本地批量生产1(1,2)岩藻糖化多糖,并设想了三类潜在的抗感染产品:1)纯化的1(1,2)岩藻糖化低聚糖,2)在细胞表面表达1(1,2)岩藻糖基化的酵母菌株,以及3)纯化的1(1,2)岩藻糖化糖蛋白。[本申请中概述的研究目标是在乳酸克鲁维酵母中生产第一个产品类别的示例,即纯化的1(1,2)岩藻糖基低聚糖,22-岩藻糖基乳糖(22-FL),足够的量来测试该分子<;S作为单一制剂在体外和体内感染模型中的疗效。乳酸克鲁维酵母中的多糖合成途径将通过内源基因操作和编码所需活性的异源基因的引入相结合而被改造。具体地说,K.lactis将被改造成合成关键的前体糖GDP-岩藻糖,随后在细胞质中制造22-岩藻糖基乳糖。随后的目标是提高从乳酸钾中回收的2-岩藻糖基乳糖的产量,使其接近商业化所需的水平。为了实现这一目标,将通过控制合成酶和前体池的细胞水平来增加2;-岩藻糖基乳糖的产量,在生物反应器条件下平衡2;-FL产量与整体细胞活力和生长性能。
英文摘要
DESCRIPTION (provided by applicant): Adherence of pathogens to their host cells is the obligatory first step of infection and is frequently mediated by specific molecular interactions [1][2]. Virulent Campylobacter species, Vibrio cholerae, enteropathogenic E.coli (EPEC), enterohemorrhagic E.coli (EHEC) and pathogenic strains of Norwalk virus, the leading bacterial and viral causes of human infectious diarrhea [3], adhere to gut epithelial surfaces through binding to 1(1,2) fucosylated cellular receptors[4][5]. 1(1,2) fucosylated glycans, which are abundant in human breast milk[6][7], have been shown both in vitro and in vivo effectively to prevent binding and infection by these pathogens[4][5]. These molecules therefore represent a new class of agent with potential to prevent infectious diarrhea, a condition that is the cause annually of over 2 million deaths worldwide [8]. However the production of 1(1,2) fucosylated glycans as anti-infective agents in sufficient quantities to impact global diarrhea incidence remains a significant challenge. Chemical syntheses are possible, but are limited by stereo-specificity issues, product impurities, and high overall cost[9][10][11]. In vitro enzymatic syntheses are also possible but are limited by a requirement for expensive nucleotide-sugar precursors. Glycosyn Inc.<s broad goal is to develop ways to manufacture 1(1,2) fucosylated glycans cheaply and in bulk through microbial fermentation, and three classes of potential anti-infective products are envisaged: 1) purified 1(1,2) fucosylated oligosaccharides, 2) yeast strains expressing 1(1,2) fucosylated glycans on their cell surface, and 3) purified 1(1,2) fucosylated glycoproteins. [[[The goal of the studies outlined in this application are to produce in the dairy yeast Kluyveromyces lactis an example of the first of these product classes, namely a purified 1(1,2) fucosylated oligosaccharide, 22-fucosyllactose (22-FL), in sufficient amounts to test this molecule<s efficacy as a single agent in in vitro and in vivo infection models. Glycan synthetic pathways in Kluyveromyces lactis will be engineered through a combination of endogenous gene manipulation and the introduction of heterologous genes encoding desired activities. Specifically, K.lactis will be engineered to synthesize the key precursor sugar, GDP-fucose, and subsequently to make 22-fucosyllactose in the cell cytoplasm. A subsequent goal is to increase the yield of 2<-fucolsyllactose recovered from K.lactis to approach levels that will be required for commercialization. To achieve this the production of 2<fucosyllactose will be increased by manipulating cellular levels of synthetic enzymes and precursor pools, balancing 2;-FL production with overall cell viability and growth performance under bioreactor conditions.
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Engineered Probiotic Yeast to Prevent Infectious Diarrhea
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批准号:7535143
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项目类别:
-
资助金额:$17.4万
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财政年份:2008
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负责人:John Michael McCoy
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依托单位:
Oligosaccharides to Prevent Infectious Diarrhea
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批准号:7535142
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项目类别:
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资助金额:$15.89万
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财政年份:2008
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负责人:John Michael McCoy
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依托单位:
Oligosaccharides to Prevent Infectious Diarrhea
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批准号:7801066
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项目类别:
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资助金额:$31.04万
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财政年份:2008
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负责人:John Michael McCoy
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依托单位:
Engineered Probiotic Yeast to Prevent Infectious Diarrhea
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批准号:7667443
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项目类别:
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资助金额:$6.64万
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财政年份:2008
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负责人:John Michael McCoy
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依托单位:
Oligosaccharides to Prevent Infectious Diarrhea
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批准号:8068682
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项目类别:
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资助金额:$43.24万
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财政年份:2008
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负责人:John Michael McCoy
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依托单位:
海外基金