DLGH1 AND UROGENITAL DEVELOPMENT
DLGH1 AND UROGENITAL DEVELOPMENT
批准号:
7876620
负责人:
JEFFREY H MINER
金额:
$31.98万
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:
2008-08-14 至 2013-05-31
关键词:
AffectAllelesAnimalsBinding ProteinsBiological ProcessBiologyCell LineCell PolarityCell ProliferationCellsComplexCytoskeletonDataDefectDevelopmentDrosophila ProteinsDrosophila genusEmbryoEmployee StrikesEpithelialEpithelial CellsEpitheliumEventExhibitsEyelid structureFamilyFamily memberFemaleFibroblastsGene ExpressionGenesGeneticGenitourinary systemGolgi ApparatusGuanylate kinaseHandHealthHomologous GeneHumanHydronephrosisImmigrationImmunofluorescence ImmunologicIn VitroKidneyKidney DiseasesKnock-outKnockout MiceLifeMAPK14 geneMammalian CellMediatingMesenchymalMesenchymeMetanephric DiverticulumMethodsMolecularMolecular ProfilingMorphogenesisMorphologyMotionMusMuscleMutagenesisMutant Strains MiceMutateMutationNaturePalatePatternPeristalsisPhenotypePhosphotransferasesPlayPopulationPreventionProtein Binding DomainProtein FamilyProteinsRegulationReporterResearchRoleSH3 DomainsScaffolding ProteinSeminal VesiclesSignal TransductionSiteSmooth MuscleSmooth Muscle MyocytesStagingSternumStromal CellsStructureStructure of mesonephric ductSuppressor-Effector T-LymphocytesSystemTestingTimeTissuesTransfectionTransgenesTransgenic MiceTumor Suppressor ProteinsUreterUrinary tractUrineUrothelial CellUrotheliumVaginaWorkWound Healingbasecell motilitycell typedlg proteinflyglycogen synthase kinase 3 betahuman DLG1 proteinimaginal discin vivomalemembermembrane-associated guanylate kinasemigrationmouse modelmutantnovelnull mutationpostsynaptic density proteinpublic health relevancereproductiveresearch studysynaptic functionurinary tract obstruction
中文摘要
描述(由申请人提供):本研究的长期目标包括确定小鼠椎间盘-大同源物1基因Dlgh 1调节泌尿生殖发育的机制。DLGH 1是一种具有多个蛋白质-蛋白质相互作用结构域的支架蛋白,包括三个PDZ结构域和一个SH 3结构域。Dlgh 1是果蝇盘状大基因dlg的同源物,dlg是蛋白质的epidermal PDZ家族以及MAGUK(膜相关鸟苷酸激酶)家族的创始成员。在果蝇中的研究表明,dlg是一种肿瘤抑制因子,因为dlg的突变导致成虫盘过度生长。在果蝇和哺乳动物细胞中的研究表明,dlg及其同系物也参与建立和/或维持上皮细胞极性。我们研究了缺乏DLGH 1的小鼠,发现了几种泌尿生殖缺陷,包括散发性肾发育不全,先天性肾积水和生殖道异常。我们已经证明肾积水与平滑肌排列缺陷有关,正常的环形肌在纵向上异常排列。这极大地削弱了肾脏的挤压运动,使得尿液保留在肾脏中。此外,输尿管基质细胞,通常位于尿路上皮和平滑肌层之间,表达Raldh 2,是从Dlgh 1突变输尿管缺席。这些细胞的缺乏也可能直接或间接地影响输尿管功能。免疫荧光研究表明,DLGH 1在尿路上皮细胞中强烈表达,在输尿管的其他细胞中表达较弱。我们将使用新的floxed Dlgh 1等位基因和适当的Cre转基因小鼠,确定哪些细胞室必须表达Dlgh 1用于正常平滑肌细胞排列和用于输尿管基质细胞的分化和/或迁移。此外,我们将产生嵌合小鼠来研究DLGH 1是否以非细胞自主方式起作用。将进行形态和功能评估,以确定Dlgh 1表达的细胞需求。接下来,我们将使用遗传学方法来研究以下假设:其他DLGH家族成员与已知或疑似DLGH 1结合蛋白的相互作用部分补偿了DLGH 1的缺失。最后,我们将使用体外方法来确定DLGH 1在细胞迁移,极化和信号传导中的作用。公共卫生相关性:先天性泌尿道异常是人群中相对常见的健康问题,并且是导致大量进行性肾病病例的原因。我们已经产生了一种新的小鼠模型的肾积水(Dlgh 1-/-小鼠),涉及输尿管平滑肌错位,这是常见于人类的尿路梗阻病例。更好地了解DLGH 1的生物学可能对理解以及治疗或预防人类尿路异常具有重要意义。
英文摘要
DESCRIPTION (provided by applicant): The long term objective of this research involves determining the mechanism whereby the mouse discs- large homolog 1 gene, Dlgh1, regulates urogenital development. DLGH1 is a scaffolding protein with multiple protein-protein interaction domains, including three PDZ domains and one SH3 domain. Dlgh1 is a homolog of the Drosophila discs-large gene, dlg, which is a founding member of the eponymous PDZ family of proteins and also of the MAGUK (membrane-associated guanylate kinase) family. Studies in Drosophila suggest that dlg is a tumor suppressor, because mutation of dlg causes overgrowth of imaginal discs. Studies in both fly and mammalian cells suggest that dlg and its homologs are also involved in establishing and/or maintaining epithelial cell polarity. We have studied mice lacking DLGH1 and found several urogenital defects, including sporadic renal agenesis, congenital hydronephrosis, and reproductive tract abnormalities. We have shown that hydronephrosis is associated with dramatic smooth muscle alignment defects; the normally circular muscle aberrantly aligns in the longitudinal direction. This greatly impairs the squeezing motion of peristalsis, such that urine is retained in the kidney. In addition, ureteric stromal cells, which normally lie between the urothelium and the smooth muscle layers and express Raldh2, are absent from Dlgh1 mutant ureters. The absence of these cells could also affect ureteric function, either directly or indirectly. Immunofluorescence studies show that DLGH1 is expressed strongly in the urothelium and weakly in other cells of the ureter. We will determine which cellular compartment must express Dlgh1 for normal smooth muscle cell alignment and for differentiation and/or migration of ureteric stromal cells using a new floxed Dlgh1 allele and appropriate Cre transgenic mice. In addition, we will generate chimeric mice to investigate whether DLGH1 acts in a non-cell autonomous fashion. Morphological and functional assessments will be performed to determine the cellular requirements for Dlgh1 expression. Next we will use genetic methods to investigate the hypothesis that the interaction of other DLGH family members with known or suspected DLGH1 binding proteins are compensating in part for the absence of DLGH1. Finally, we will use in vitro methods to define the role of DLGH1 in cell migration, polarization, and signaling. PUBLIC HEALTH RELEVANCE: Congenital urinary tract abnormalities are a relatively common health problem in the human population and are responsible for a significant number of cases of progressive renal disease. We have generated a novel mouse model of hydronephrosis (Dlgh1-/- mice) involving the misalignment of ureteric smooth muscle, which is commonly found in human cases of urinary tract obstruction. A better understanding of the biology of DLGH1 could have important implications for understanding and perhaps for treatment or prevention of urinary tract abnormalities in humans.
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