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How mutations in proinsulin cause diabetes: a protein-misfolding disease

How mutations in proinsulin cause diabetes: a protein-misfolding disease
胰岛素原突变如何导致糖尿病:一种蛋白质错误折叠疾病
批准号:
8640155
负责人:
PETER ARVAN
金额:
$45.85万
依托单位国家:
美国
项目类别:
财政年份:
2004
资助国家:
美国
项目状态:
已结题
起止时间:
2004-09-30 至 2015-03-31
关键词:
AffectAllelesAmino Acid SequenceAmino Acid SubstitutionAmino AcidsAnabolismArchitectureBiochemicalBiochemistryBiologicalBiological AssayBiophysicsBoxingC-PeptideCell Culture TechniquesCell DeathCell NucleusCell secretionCellsCellular biologyChicagoClinicalClinical DistributionCrystallizationCystineDiabetes MellitusDiseaseDisease modelDisulfidesDominant-Negative MutationEndoplasmic ReticulumEscherichia coliFoundationsFunctional disorderGenerationsGenesGlycineGoalsGrantGuanidinesHigh Pressure Liquid ChromatographyHomeostasisHormonesHumanHuman GeneticsIn VitroInsulinKineticsLabelLeftLibrariesLigationMammalian CellMeasuresMetabolic syndromeMetabolismMichiganModelingMolecularMonitorMutagenesisMutationNPM1 geneNeonatalNon-Insulin-Dependent Diabetes MellitusOrganellesPancreasPathogenesisPatientsPeptide Sequence DeterminationPeptidesPhasePhenotypePlayPopulationPositioning AttributePreparationProinsulinPropertyProteinsProtocols documentationPublishingRandomizedReactionReadingRegulationRelative (related person)ResearchRoleScanningSecretory CellShippingShipsSideSiteSolutionsStructureSurveysSyndromeSynthesis ChemistryTestingThermodynamicsTimeTransfectionTransgenic MiceUniversitiesUrsidae FamilyVariantanalogbasechemical synthesisclinical research sitedesignendoplasmic reticulum stressglobular proteinhuman diseaseinsightinterestmouse modelmutantneonatal diabetes mellituspolypeptidepreproinsulinprotein misfoldingprototypepublic health relevancereceptor bindingresponsestructural biologytrafficking

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DESCRIPTION (provided by applicant): How mutations in proinsulin cause diabetes: a protein-misfolding disease Insulin plays a central role in the regulation of vertebrate metabolism. The hormone, the post-translational product of a single-chain precursor (proinsulin), is a globular protein containing two chains, A (21 residues) and B (30 residues). Recent advances in human genetics have identified dominant negative mutations in the insulin gene causing permanent neonatal-onset diabetes mellitus (DM). The objective of this interdisciplinary application is to investigate the biochemical, structural, and cell-biological mechanisms of this syndrome as a model disease of protein misfolding. We hypothesize that the clinical mutations block folding of the precursor in the endoplasmic reticulum (ER) of pancreatic ¿-cells. Structural analysis of the mutant proinsulins will provide insight into native determinants of foldability. Although expression of the wild-type allele would in other circumstances be sufficient to maintain homeostasis, studies of a corresponding mouse model motivate the hypothesis that the misfolded variant perturbs wild-type biosynthesis through formation of non-native aggregates containing both wild-type and mutant polypeptides. Impaired ¿-cell secretion is associated with ER stress, distorted organelle architecture, and eventual cell death. To test this central hypothesis and to define the structural bases of pathological misfolding, a team has been assembled at CWRU, University of Michigan, and University of Chicago to bring to bear the combined power of biochemistry, biophysics, structural biology, cell biology, and transgenic mouse models. This collaborative proposal thus offers the exciting possibility of deciphering the molecular basis of a human disease of protein misfolding. Although neonatal diabetes is uncommon, the proposed contribution of proinsulin misfolding and ER stress to the mechanism of ¿-cell dysfunction in the metabolic syndrome and type 2 diabetes mellitus extends the significance of this application to diverse human populations.
期刊论文(2)
专著(0)
科研奖励(0)
会议论文
Supramolecular protein engineering: design of zinc-stapled insulin hexamers as a long acting depot.
超分子蛋白质工程:设计作为长效储库的锌钉胰岛素六聚体。
DOI: 10.1074/jbc.c110.105825
发表时间: 2010
期刊: The Journal of biological chemistry
影响因子: --
作者: [Phillips,NelsonB, Wan,Zhu-li, Whittaker,Linda, Hu,Shi-Quan, Huang,Kun, Hua,Qing-xin, Whittaker,Jonathan, Ismail-Beigi,Faramarz, Weiss,MichaelA]
通讯作者: Weiss,MichaelA
Improving Proinsulin Folding to Ameliorate Type II Diabetes
Endoplasmic Reticulum stress and thyroid cell death
Endoplasmic Reticulum stress and thyroid cell death
A Stress-Induced Vicious Cycle In The Development of T1D
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