Regulation of kidney nutrient metabolism by SIRT5
Regulation of kidney nutrient metabolism by SIRT5
批准号:
9760610
负责人:
Judy Jiyeon Baek
金额:
$3.72万
依托单位国家:
美国
项目类别:
财政年份:
2019
资助国家:
美国
项目状态:
已结题
起止时间:
2019-07-01 至 2021-06-30
关键词:
BioinformaticsBiological ModelsBiologyCitric Acid CycleDataDiabetes MellitusDiabetic NephropathyDiabetic mouseDiseaseEnd stage renal failureEnzymesExperimental ModelsFatty AcidsGlobal ChangeGlucoseGlycolysisHigh Fat DietHumanHyperglycemiaIncidenceInvestigationIsotope LabelingKidneyKnock-outKnockout MiceKnowledgeLinkLysineMalonyl Coenzyme AMeasuresMediatingMediator of activation proteinMetabolicMetabolismMitochondriaModelingMorbidity - disease rateMusNutrientPalmitatesPathogenesisPeptidesPhysiciansPositioning AttributePost-Translational Protein ProcessingProcessProteinsProteomicsRegulationResearchRisk FactorsRoleScientistSirtuinsStreptozocinSystemSystems BiologyTestingTrainingType 2 diabeticbasecarbohydrate metabolismcareerdb/db mousediabeticdisorder riskenzyme activityfatty acid metabolismglucose metabolismimprovedkidney cortexkidney metabolismlipid metabolismmetabolomicsmitochondrial dysfunctionmortalitymouse modelnutrient metabolismoxidationresponsetherapeutic targettranscriptomics
中文摘要
项目总结(摘要)
英文摘要
PROJECT SUMMARY (ABSTRACT)
The morbidity and mortality of diabetes mellitus occurs largely from its major complications, which include
diabetic kidney disease (DKD). Although extensive data exist on disease mechanisms in experimental models,
the pathogenesis of human DKD remains unclear except that hyperglycemia is a major risk factor for DKD.
Our studies have led to an emerging paradigm that altered nutrient utilization and flux in the diabetic kidney is
a key feature of DKD. Utilizing BKS db/db diabetic mouse model, we investigated changes in carbohydrate and
lipid metabolism in kidney cortex. A systems approach using transcriptomics, metabolomics, and metabolic flux
analysis identified increased glucose and fatty acid metabolism in the kidney. The increased nutrient utilization
did not result in an increased ATP/ADP ratio, and was accompanied by mitochondrial dysfunction.
Furthermore, we observed decreased lysine-malonylation of proteins (a process that can alter enzyme activity)
in diabetic kidney associated with increased Sirtuin 5 (SIRT 5) activity, a known mediator of demalonylation.
These observations form the basis of this proposal that seeks to test the role of SIRT5 in mediating altered
metabolic flux in the diabetic kidney. We hypothesize that the decreased malonylation, which is regulated by
SIRT 5, observed in the db/db diabetic kidney contributes to the increased nutrient flux. Using SIRT 5 knock-
out mice made diabetic with high-fat diet and streptozotocin treatments, our plan is to: 1) investigate the effect
of SIRT 5 deficiency in glucose and fatty-acid metabolic flux in kidney cortex in diabetic mice, 2) identify targets
of differential malonylation with SIRT 5 deficiency in kidney and assess for the effect of malonylation on target
metabolic enzyme activity in diabetic kidney cortex, and 3) evaluate effect of lysine malonylation of SIRT 5
target metabolic enzymes under diabetic conditions. These studies will be pivotal in clarifying the role of SIRT5
in nutrient utilization in the kidney in diabetic states.
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