The dicarbonyl proteome: proteins susceptible to dicarbonyl glycation at functional sites in health, aging, and disease.
about
Long term running biphasically improves methylglyoxal-related metabolism, redox homeostasis and neurotrophic support within adult mouse brain cortexA Snapshot of the Plant Glycated Proteome: STRUCTURAL, FUNCTIONAL, AND MECHANISTIC ASPECTS.RAGE-dependent activation of gene expression of superoxide dismutase and vanins by AGE-rich extracts in mice cardiac tissue and murine cardiac fibroblasts.A novel source of methylglyoxal and glyoxal in retina: implications for age-related macular degenerationA global perspective of the genetic basis for carbonyl stress resistance.Exploring post-translational arginine modification using chemically synthesized methylglyoxal hydroimidazolones.Complement dysregulation in AMD: RPE-Bruch's membrane-choroidAGE restriction in diabetes mellitus: a paradigm shift.A perspective on the Maillard reaction and the analysis of protein glycation by mass spectrometry: probing the pathogenesis of chronic diseaseOxidative stress in diabetes and Alzheimer's disease.Protein damage in diabetes and uremia--identifying hotspots of proteome damage where minimal modification is amplified to marked pathophysiological effect.Advanced glycation end products and diabetic retinopathy.Inhibition of tumour cell growth by carnosine: some possible mechanisms.Intracellular Accumulation of Methylglyoxal by Glyoxalase 1 Knock Down Alters Collagen Homoeostasis in L6 Myoblasts.Methylglyoxal in Metabolic Disorders: Facts, Myths, and Promises.Glucose metabolite glyoxal induces senescence in telomerase-immortalized human mesenchymal stem cellsAdvanced glycation end product accumulation in rho(0) cells without a functional respiratory chain.Aging, Proteotoxicity, Mitochondria, Glycation, NAD and Carnosine: Possible Inter-Relationships and Resolution of the Oxygen Paradox.Methylglyoxal modulates immune responses: relevance to diabetesGlycated AAV vectors: chemical redirection of viral tissue tropism.Transcriptional control of glyoxalase 1 by Nrf2 provides a stress-responsive defence against dicarbonyl glycation.Maillard Proteomics: Opening New Pages.[Protein molecular aging: which role in physiopathology?]Enhanced Formation of Methylglyoxal-Derived Advanced Glycation End Products in Arabidopsis Under Ammonium Nutrition.Methylglyoxal functions as Hill oxidant and stimulates the photoreduction of O2 at photosystem I: a symptom of plant diabetes
P2860
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P2860
The dicarbonyl proteome: proteins susceptible to dicarbonyl glycation at functional sites in health, aging, and disease.
description
2008 nî lūn-bûn
@nan
2008年の論文
@ja
2008年学术文章
@wuu
2008年学术文章
@zh
2008年学术文章
@zh-cn
2008年学术文章
@zh-hans
2008年学术文章
@zh-my
2008年学术文章
@zh-sg
2008年學術文章
@yue
2008年學術文章
@zh-hant
name
The dicarbonyl proteome: prote ...... in health, aging, and disease.
@en
The dicarbonyl proteome: prote ...... in health, aging, and disease.
@nl
type
label
The dicarbonyl proteome: prote ...... in health, aging, and disease.
@en
The dicarbonyl proteome: prote ...... in health, aging, and disease.
@nl
prefLabel
The dicarbonyl proteome: prote ...... in health, aging, and disease.
@en
The dicarbonyl proteome: prote ...... in health, aging, and disease.
@nl
P356
P1476
The dicarbonyl proteome: prote ...... in health, aging, and disease.
@en
P2093
Naila Rabbani
P2860
P304
P356
10.1196/ANNALS.1433.043
P577
2008-04-01T00:00:00Z