Every reference with a DOI in the deposited reference list resolved to a known
work in Crossref or DataCite at the dated check, and none carried a retraction,
withdrawal, or removal notice.
The 86 checked references that resolve
resolves10.1016/S0304-3835(99)00039-7Resveratrol, an antioxidant present in red wine, induces apoptosis in human promyelocytic leukemia (HL-60) cells
resolves10.1096/fj.04-2622fjeAge‐associated increases in oxidative stress and antioxidant enzyme activities in cardiac interfibrillar mitochondria: implications for the mitochondrial theory of aging
resolves10.1016/j.mad.2005.11.004Alterations in mitochondrial function, hydrogen peroxide release and oxidative damage in mouse hind-limb skeletal muscle during aging
resolves10.1093/nar/23.20.4122Marked increase in the number and variety of mitochondrial DNA rearrangements in aging human skeletal muscle
resolves10.1126/science.1106653Extension of Murine Life Span by Overexpression of Catalase Targeted to Mitochondria
resolves10.1152/ajpheart.00012.2008Dysregulation of mitochondrial biogenesis in vascular endothelial and smooth muscle cells of aged rats
resolves10.1152/ajpheart.01346.2006Increased mitochondrial H
<sub>2</sub>
O
<sub>2</sub>
production promotes endothelial NF-κB activation in aged rat arteries
resolves10.1152/ajpheart.00693.2008Longevity is associated with increased vascular resistance to high glucose-induced oxidative stress and inflammatory gene expression in <i>Peromyscus leucopus</i>
resolves10.1016/j.cmet.2008.06.011Resveratrol Delays Age-Related Deterioration and Mimics Transcriptional Aspects of Dietary Restriction without Extending Life Span
resolves10.1159/000089720Resveratrol, a Polyphenolic Phytoalexin, Attenuates Diabetic Nephropathy in Rats
resolves10.1152/ajpendo.00487.2005Resveratrol, a red wine antioxidant, possesses an insulin-like effect in streptozotocin-induced diabetic rats
resolves10.1016/j.freeradbiomed.2007.05.004Resveratrol alleviates cardiac dysfunction in streptozotocin-induced diabetes: Role of nitric oxide, thioredoxin, and heme oxygenase
resolves10.2337/db05-1188Polyphenols Stimulate AMP-Activated Protein Kinase, Lower Lipids, and Inhibit Accelerated Atherosclerosis in Diabetic LDL Receptor–Deficient Mice
resolves10.1161/01.CIR.99.6.779Mediterranean Diet, Traditional Risk Factors, and the Rate of Cardiovascular Complications After Myocardial Infarction
resolves10.1006/excr.1999.4471Differential Effects on Growth, Cell Cycle Arrest, and Induction of Apoptosis by Resveratrol in Human Prostate Cancer Cell Lines
resolves10.1016/S0026-895X(24)12541-2Resveratrol Has Antagonist Activity on the Aryl Hydrocarbon Receptor: Implications for Prevention of Dioxin Toxicity
resolves10.1016/0020-708X(67)90115-9A compilation of specific bimolecular rate constants for the reactions of hydrated electrons, hydrogen atoms and hydroxyl radicals with inorganic and organic compounds in aqueous solution
resolves10.1016/0003-2697(81)90590-XSuperoxide-dependent formation of hydroxyl radicals: Detection of hydroxyl radicals by the hydroxylation of aromatic compounds
resolves10.1039/tf9676301181Pulse radiolysis studies of aqueous phenol. Water elimination from dihydroxycyclohexadienyl radicals to form phenoxyl
resolves10.1016/0006-291X(82)91156-1Aniline is hydroxylated by the cytochrome P-450-dependent hydroxyl radical-mediated oxygenation mechanism
resolves10.1021/jf980614bAntioxidative Phenolic Compounds from Sage (<i>Salvia officinalis</i>)
resolves10.1074/jbc.M101846200Specific Structural Determinants Are Responsible for the Antioxidant Activity and the Cell Cycle Effects of Resveratrol
resolves10.1039/b109063cElementary reactions of the antioxidant action of trans-stilbene derivatives: resveratrol, pinosylvin and 4-hydroxystilbene
resolves10.1021/jp037247dAntioxidant Properties of Phenolic Compounds: H-Atom versus Electron Transfer Mechanism
resolves10.1021/jf048794eStructural Basis for Antioxidant Activity of <i>trans</i>-Resveratrol: Ab Initio Calculations and Crystal and Molecular Structure
resolves10.1016/0891-5849(88)90043-3Why is the hydroxyl radical the only radical that commonly adds to DNA? Hypothesis: It has a rare combination of high electrophilicity, high thermochemical reactivity, and a mode of production that can occur near DNA
resolves10.1021/ct0502763Design of Density Functionals by Combining the Method of Constraint Satisfaction with Parametrization for Thermochemistry, Thermochemical Kinetics, and Noncovalent Interactions
resolves10.1021/jp906144dOH Radical Gas Phase Reactions with Aliphatic Ethers: A Variational Transition State Theory Study
resolves10.1002/poc.1547A computational study of stereospecifity in the thermal elimination reaction of menthyl benzoate in the gas phase
resolves10.1021/ol901862hGuanosine + OH Radical Reaction in Aqueous Solution: A Reinterpretation of the UV−vis Data Based on Thermodynamic and Kinetic Calculations
resolves10.1021/jp110400tOH Radical Scavenging Activity of Edaravone: Mechanism and Kinetics
resolves10.1021/ma902803pRole of Chain Transfer Agents in Free Radical Polymerization Kinetics
resolves10.1021/jp201517pMechanism and Kinetics of the Water-Assisted Formic Acid + OH Reaction under Tropospheric Conditions
resolves10.1021/jp209776xUric and 1-Methyluric Acids: Metabolic Wastes or Antiradical Protectors?
resolves10.1021/jp2047163Ionization Energies, Proton Affinities, and p<i>K</i><sub>a</sub>Values of a Large Series of Edaravone Derivatives: Implication for Their Free Radical Scavenging Activity
resolves10.1021/ja993693wA Quantum Chemical and Classical Transition State Theory Explanation of Negative Activation Energies in OH Addition To Substituted Ethenes
resolves10.1021/ja003372gOn the Importance of Prereactive Complexes in Molecule−Radical Reactions: Hydrogen Abstraction from Aldehydes by OH
resolves10.1021/jp062775lTheoretical Determination of the Rate Constant for OH Hydrogen Abstraction from Toluene
resolves10.1007/s00214-011-0921-0On the possible catalytic role of a single water molecule in the acetone + OH gas phase reaction: a theoretical pseudo-second-order kinetics study
resolves10.1021/jz101218nCan a Single Water Molecule Really Catalyze the Acetaldehyde + OH Reaction in Tropospheric Conditions?
resolves10.1021/jp810292nUniversal Solvation Model Based on Solute Electron Density and on a Continuum Model of the Solvent Defined by the Bulk Dielectric Constant and Atomic Surface Tensions
resolves10.1002/chem.19970030208Theoretical Investigation of the Mechanism of the Baeyer‐Villiger Reaction in Nonpolar Solvents
resolves10.1021/jp0540499Relative Gibbs Energies in Solution through Continuum Models: Effect of the Loss of Translational Degrees of Freedom in Bimolecular Reactions on Gibbs Energy Barriers
resolves10.1039/tf9353100875Some applications of the transition state method to the calculation of reaction velocities, especially in solution
resolves10.1021/ja00237a007Estimation of inner shell Marcus terms for amino nitrogen compounds by molecular orbital calculations
resolves10.1021/jp064406vEstimation of Electronic Coupling for Intermolecular Electron Transfer from Cross-Reaction Data
resolves10.1021/ed062p104Nearly encounter-controlled reactions: The equivalence of the steady-state and diffusional viewpoints
resolves10.1002/andp.19053220806Über die von der molekularkinetischen Theorie der Wärme geforderte Bewegung von in ruhenden Flüssigkeiten suspendierten Teilchen
resolves10.1039/b924521aThe inactivation of lipid peroxide radical by quercetin. A theoretical insight
resolves10.1021/jp206347uROS Initiated Oxidation of Dopamine under Oxidative Stress Conditions in Aqueous and Lipidic Environments
resolves10.1039/c1cp20722aMechanism and kinetics studies on the antioxidant activity of sinapinic acid
resolves10.1021/jp2022105Canolol: A Promising Chemical Agent against Oxidative Stress
resolves10.1039/c1ra00474cGlutathione: mechanism and kinetics of its non-enzymatic defense action against free radicals
resolves10.1021/ja107420aControlling Electron Transfer in Donor−Bridge−Acceptor Molecules Using Cross-Conjugated Bridges
resolves10.1021/jf960900sChemistry, Biochemistry, and Dietary Role of Potato Polyphenols. A Review
resolves10.1021/jp020297iRate Coefficient and Mechanism of the Gas Phase OH Hydrogen Abstraction Reaction from Formic Acid: A Quantum Mechanical Approach
resolves10.1021/jp8026258Theoretical Explanation of Nonexponential OH Decay in Reactions with Benzene and Toluene under Pseudo-First-Order Conditions
resolves10.1021/jp101157bWater Complexes of Important Air Pollutants: Geometries, Complexation Energies, Concentrations, Infrared Spectra, and Intrinsic Reactivity
The 15 references without a DOI — listed, not checked
no DOI — not checkedref3/cit3
no DOI — not checkedref23/cit23e
no DOI — not checkedLipid Peroxides in Biology and Medicine
no DOI — not checkedNational Standard Reference Data System
no DOI — not checkedBielski, B. H.; Gebieki, J. M.InFree Radicals in Biology;Pryor, W. A., Ed.Academic Press:New York, 1977; Vol.3, pp2–48,
no DOI — not checkedref38/cit38
no DOI — not checkedref39/cit39
no DOI — not checkedref40/cit40
no DOI — not checkedThe Radiation Chemistry of Water
no DOI — not checkedGaussian 09, Revision A.02:Frisch, M. J.; Trucks, G. W.; Schlegel, H. B.; Scuseria, G. E.; Robb, M. A.; Cheeseman, J. R.; Scalmani, G.; Barone, V.; Mennucci, B.; Petersson, G. A.; Nakatsuji, H.; Caricato, M.; Li, X.; Hratchian, H. P.; Izmaylov, A. F.; Bloino, J.; Zheng, G.; Sonnenberg, J. L.; Hada, M.; Ehara, M.; Toyota, K.; Fukuda, R.; Hasegawa, J.; Ishida, M.; Nakajima, T.; Honda, Y.; Kitao, O.; Nakai, H.; Vreven, T.; Montgomery, J. A., Jr.; Peralta, J. E.; Ogliaro, F.; Bearpark, M.; Heyd, J. J.; Brothers, E.; Kudin, K. N.; Staroverov, V. N.; Kobayashi, R.; Normand, J.; Raghavachari, K.; Rendell, A.; Burant, J. C.; Iyengar, S. S.; Tomasi, J.; Cossi, M.; Rega, N.; Millam, J. M.; Klene, M.; Knox, J. E.; Cross, J. B.; Bakken, V.; Adamo, C.; Jaramillo, J.; Gomperts, R.; Stratmann, R. E.; Yazyev, O.; Austin, A. J.; Cammi, R.; Pomelli, C.; Ochterski, J. W.; Martin, R. L.; Morokuma, K.; Zakrzewski, V. G.; Voth, G. A.; Salvador, P.; Dannenberg, J. J.; Dapprich, S.; Daniels, A. D.; Farkas, O.; Foresman, J. B.; Ortiz, J. V.; Cioslowski, J.; Fox, D. J.Gaussian, Inc.,Wallingford CT, 2009.
no DOI — not checkedThe Foundations of Chemical Kinetics
no DOI — not checkedZhang, S.; Truong, T. N.VKLab version 1.0,University of Utah, 2001.
no DOI — not checkedref72/cit72
no DOI — not checkedbStokes, G. G.Mathematical and Physical Papers;Cambridge University Press:Cambridge, 1903; Vol.3(esp Section IV, p55).
no DOI — not checkedref77/cit77d
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