Molecular basis for the thiol sensitivity of insulin-degrading enzyme
about
Diabetes and Alzheimer disease, two overlapping pathologies with the same background: oxidative stressMolecular Bases for the Recognition of Short Peptide Substrates and Cysteine-Directed Modifications of Human Insulin-Degrading Enzyme †Designed Inhibitors of Insulin-Degrading Enzyme Regulate the Catabolism and Activity of InsulinYeast Ste23p shares functional similarities with mammalian insulin-degrading enzymes.Involvement of insulin-degrading enzyme in the clearance of beta-amyloid at the blood-CSF barrier: Consequences of lead exposureSmall-molecule activators of insulin-degrading enzyme discovered through high-throughput compound screeningStructure based discovery of small molecules to regulate the activity of human insulin degrading enzymeProtective role of Cys-178 against the inactivation and oligomerization of human insulin-degrading enzyme by oxidation and nitrosylation.Cysteine 904 is required for maximal insulin degrading enzyme activity and polyanion activationRedox regulation of insulin degradation by insulin-degrading enzyme.Nontoxic antimicrobials that evade drug resistance.Elevated glucose and oligomeric β-amyloid disrupt synapses via a common pathway of aberrant protein S-nitrosylation.The AbetaCs of Abeta-cleaving proteases.Proteolytic degradation of amyloid β-protein.Potential efficacy of Lactobacillus casei IBRC_M10711 on expression and activity of insulin degrading enzyme but not insulin degradation.Common Pesticide, Dichlorodiphenyltrichloroethane (DDT), Increases Amyloid-β Levels by Impairing the Function of ABCA1 and IDE: Implication for Alzheimer's Disease.Multiple allosteric sites are involved in the modulation of insulin-degrading-enzyme activity by somatostatin.C2'-OH of amphotericin B plays an important role in binding the primary sterol of human cells but not yeast cellsReactive cysteine in the active-site motif of Bacteroides thetaiotaomicron dipeptidyl peptidase III is a regulatory residue for enzyme activity.Peptidic inhibitors of insulin-degrading enzyme with potential for dermatological applications discovered via phage display.Copper(I) and copper(II) inhibit Aβ peptides proteolysis by insulin-degrading enzyme differently: implications for metallostasis alteration in Alzheimer's disease.Inhibition of Insulin Degrading Enzyme and Insulin Degradation by UV-Killed Lactobacillus acidophilus.
P2860
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P2860
Molecular basis for the thiol sensitivity of insulin-degrading enzyme
description
2008 nî lūn-bûn
@nan
2008 թուականի Յուլիսին հրատարակուած գիտական յօդուած
@hyw
2008 թվականի հուլիսին հրատարակված գիտական հոդված
@hy
2008年の論文
@ja
2008年論文
@yue
2008年論文
@zh-hant
2008年論文
@zh-hk
2008年論文
@zh-mo
2008年論文
@zh-tw
2008年论文
@wuu
name
Molecular basis for the thiol sensitivity of insulin-degrading enzyme
@ast
Molecular basis for the thiol sensitivity of insulin-degrading enzyme
@en
Molecular basis for the thiol sensitivity of insulin-degrading enzyme
@nl
type
label
Molecular basis for the thiol sensitivity of insulin-degrading enzyme
@ast
Molecular basis for the thiol sensitivity of insulin-degrading enzyme
@en
Molecular basis for the thiol sensitivity of insulin-degrading enzyme
@nl
prefLabel
Molecular basis for the thiol sensitivity of insulin-degrading enzyme
@ast
Molecular basis for the thiol sensitivity of insulin-degrading enzyme
@en
Molecular basis for the thiol sensitivity of insulin-degrading enzyme
@nl
P2093
P2860
P356
P1476
Molecular basis for the thiol sensitivity of insulin-degrading enzyme
@en
P2093
Dennis J Selkoe
Lael Reinstatler
Malcolm A Leissring
Marie Neant-Fery
Rubén D Garcia-Ordoñez
Todd P Logan
P2860
P304
P356
10.1073/PNAS.0801261105
P407
P577
2008-07-15T00:00:00Z