REGULATION OF 15N UREA ISOTOPOMERS PRODUCTION
REGULATION OF 15N UREA ISOTOPOMERS PRODUCTION
批准号:
7368044
负责人:
ITZHAK NISSIM
金额:
$34.92万
依托单位国家:
美国
项目类别:
财政年份:
1999
资助国家:
美国
项目状态:
已结题
起止时间:
1999-04-01 至 2009-05-31
关键词:
Acetyl Coenzyme AAcidsAcuteAcyl Coenzyme AAddressAdvanced DevelopmentAgmatineAminationAmino-acid N-acetyltransferaseApplications GrantsArginineArginine decarboxylaseArtsAspartateAttenuatedBeta CellCarbamoyl-Phosphate Synthase (Ammonia)CarnitineCarnitine AcyltransferasesCarnitine Palmitoyltransferase ICarnitine Palmitoyltransferase IIChildCitric Acid CycleCitrullineClinicalCoenzyme AConsumptionCyclic AMPCytosolDataDeaminationDoctor of PhilosophyEnzymesEstersFamilyFatty AcidsFoundationsFundingGlutamate DehydrogenaseGlutamatesGlutaminaseGlutaratesGoalsHepaticHumanHyperammonemiaHyperinsulinismInfantInsulinInvestigationKineticsLabelLeadLigaseLinkLiverLiver MitochondriaMalonyl Coenzyme AMass FragmentographyMediatingMetabolicMetabolismMethodologyMitochondriaMitochondrial MatrixModelingN acetyl L glutamateNonesterified Fatty AcidsNuclear Magnetic ResonanceNumbersOuter Mitochondrial MembraneOxaloacetatesOxidoreductasePancreasPathologicPatientsPerfusionPersistent Hyperinsulinemia Hypoglycemia of InfancyPhosphatidylcholine-Sterol O-AcyltransferasePrincipal InvestigatorProductionProgress ReportsProteinsProtocols documentationPyruvatePyruvate CarboxylasePyruvatesRateReactionRegulationResearch PersonnelSecond Messenger SystemsSecondary toSignal TransductionSiteStructure of beta Cell of isletSupplementationSyndromeSystemTherapeuticTransgenic MiceTransgenic OrganismsUreaUrea Nitrogenbasefatty acid oxidationgain of function mutationhepatic ureagenesishormone regulationin vivoinorganic phosphatemouse modeloxaloacetateoxidationprogramssecond messenger
中文摘要
描述(由申请人提供):在正常和病理状态下,肝脏尿失禁的急性调节一直是广泛研究和众多争议的主题。最近,我们发现精氨酸代谢的产物--精氨酸脱羧酶(ADC)可以刺激脂肪酸氧化(FAO),从而合成氨基甲酰磷酸合成酶-I(CPS-I)的激活剂N-乙酰谷氨酸(NAG)。此外,胍丁胺还能提高转基因婴儿高胰岛素/高氨血症(HI/HA)综合征小鼠模型肝脏的NAG水平和尿素合成。因此,在HI/HA的情况下,胍丁胺可能被证明是一个有价值的治疗辅助药物。因此,目前更新建议的总体目标是:(I)阐明胍丁胺调节FAO、NAG和尿素合成的机制(S);以及(Ii)仔细研究先天性HI损害肝脏尿素生成并导致HA的机制(S)。在这些目标中寻求的信息可能会促进胍丁胺在治疗尿失禁方面的潜在应用。基于我们的发现,我们建议探索两个主要假设:(I)胍丁胺刺激FAO,触发代谢级联,导致乙酰辅酶A和谷氨酸可用于合成NAG的可用性增加,从而导致CPS-I的激活;(Ii)HI/HA患者的β细胞胰岛素释放增加导致FAO降低。粮农组织的减少,再加上肝脏谷氨酸氧化增加,导致功能获得突变,导致乙酰辅酶A和谷氨酸的耗尽,从而减少NAG和尿素的合成。然而,Agmatine将通过刺激粮农组织和增加NAG合成来逆转这一代谢级联。
我们将使用在胰岛β细胞或肝脏表达谷氨酸脱氢酶(GDH)功能获得突变的野生型和转基因小鼠作为人HI/HA的模型。同时,我们将使用最先进的方法,包括15N和/或13C标记的前体,气相色谱-质谱仪(GC-MS)和核磁共振(NMR),以确定胍丁胺对这种HI/HA模型小鼠肝脏NAG和尿失禁的有益影响。建议的研究既具有临床意义,也具有科学意义。通过推进改善尿素合成受损的方案的开发,将产生的数据可能会对临床产生巨大的影响。
英文摘要
DESCRIPTION (provided by applicant): The acute regulation of hepatic ureagenesis under normal and pathologic states has been the subject of extensive investigation and numerous controversies. Recently, we have discovered that agmatine, the product of arginine metabolism via the arginine decarboxylase (ADC) reaction, stimulates fatty acid oxidation (FAO), and thus synthesis of N-acetylglutamate (NAG), an activator of carbamoyl phosphate synthetase-I (CPS-I). In addition, agmatine elevates NAG levels and urea synthesis in livers obtained from the transgenic mouse model of infant hyperinsulinism/hyperammonemia (HI/HA) syndrome. Thus, agmatine might prove a valuable therapeutic adjunct in the case of HI/HA. Therefore, the overall aims of the current renewal proposal are: (i) To elucidate the mechanism(s) by which agmatine regulates FAO, NAG and urea synthesis; and (ii) To scrutinize the mechanism(s) by which congenital HI impairs hepatic ureagenesis and leads to HA. The information sought in these aims may advance the potential application of agmatine in the treatment of impaired ureagenesis. Based on our findings we propose to explore two main hypotheses: (i) The stimulation of FAO by agmatine, triggers a metabolic cascade that leads to an increased availability of acetyl-CoA and glutamate for the synthesis of NAG, thus resulting in the activation of CPS-I; and (ii) The increased uncontrolled release of insulin by beta-cells in HI/HA patients leads to decreased FAO. A decrease in FAO, together with increased hepatic glutamate oxidation, resulting from the GDH-linked gain-of-function mutation, leads to the depletion of acetyI-CoA and glutamate and thus, diminished NAG and urea synthesis. Agmatine, however, will reverse this metabolic cascade by stimulating FAO and increasing NAG synthesis.
We will use wild type and transgenic mice expressing the glutamate dehydrogenase (GDH) gain-of-function mutation in pancreatic beta-cells or the liver as a model of human HI/HA. In conjunction, we will use state-of-the-art methodologies, including 15N and/or 13C labeled precursors, Gas Chromatography-Mass Spectrometry (GC-MS) and Nuclear Magnetic Resonance (NMR), to determine the beneficial effect of agmatine on hepatic NAG and ureagenesis in this mouse model of HI/HA. The proposed studies are of clinical as well as scientific significance. The data to be generated may have tremendous clinical impact by advancing the development of a protocol to ameliorate impaired urea synthesis.
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