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Oxidation chain

Side chain oxidation of alkylbenzenes is important in certain metabolic processes One way m which the body rids itself of foreign substances is by oxidation m the liver to compounds that are more polar and hence more easily excreted m the urine Toluene for example is oxidized to benzoic acid by this process and is eliminated rather readily... [Pg.444]

Pellagra is a disease caused by a deficiency of niacm (C6FI5NO2) in the diet Niacin can be synthesized in the laboratory by the side chain oxidation of 3 methylpyndine with chromic acid or potassium permanganate Suggest a reasonable structure for niacin... [Pg.471]

You will recognize the side chain oxidation of p xylene to terephthahc acid as a reaction type discussed previously (Section 11 13) Examples of other reactions encoun tered earlier that can be applied to the synthesis of carboxylic acids are collected m Table 19 4... [Pg.806]

Tocotrienols differ from tocopherols by the presence of three isolated double bonds in the branched alkyl side chain. Oxidation of tocopherol leads to ring opening and the formation of tocoquinones that show an intense red color. This species is a significant contributor to color quaUty problems in oils that have been abused. Tocopherols function as natural antioxidants (qv). An important factor in their activity is their slow reaction rate with oxygen relative to combination with other free radicals (11). [Pg.124]

Further side-chain oxidation of vitamin metabohtes may be necessary for phosphate transport (188,189). 24,25-Dihydtoxycholecalcifetol is... [Pg.136]

The hterature suggests that more than one mechanism may be operative for a given antiozonant, and that different mechanisms may be appHcable to different types of antiozonants. All of the evidence, however, indicates that the scavenger mechanism is the most important. All antiozonants react with ozone at a much higher rate than does the mbber which they protect. The extremely high reactivity with ozone of/)-phenylenediamines, compared to other amines, is best explained by their unique abiUty to react ftee-tadicaHy. The chemistry of ozone—/)-PDA reactions is known in some detail (30,31). The first step is beheved to be the formation of an ozone—/)-PDA adduct (32), or in some cases a radical ion. Pour competing fates for dissociation of the initial adduct have been described amine oxide formation, side-chain oxidation, nitroxide radical formation, and amino radical formation. [Pg.237]

Free-radical chain inhibitors are of considerable economic importance. The term antioxidant is commonly appUed to inhibitors that retard the free-radical chain oxidations, termed autoxidations, that can cause relatively rapid deterioration of many commercial materials derived from organic molecules, including foodstuffs, petroleum products, and plastics. The chain mechanism for autoxidation of hydrocarbons is ... [Pg.685]

Free-radical chain oxidation of organic molecules by molecular oxygen is often referred to as autoxidation (see Section 12.2.1). The general mechanism is outlined below. [Pg.706]

Wipf and Miller have reported side-chain oxidation of 3-hydroxy amides with the Dess-Martin periodinane, followed by immediate cyclodehydration with triphenylphosphine-iodine, which provides a versatile extension of the Robinson-Gabriel method to substituted oxazoles. Application of this method was used to prepare the oxazole fragment 10 in 55% overall yield from 3-hydroxy amide 8. [Pg.250]

The mechanism of side-chain oxidation is complex and involves reaction of C-J-l bonds at the position next to the aromatic ring to form intermediate ben-zylic radicals, tert- Butyl benzene has no benzylic hydrogens, however, and is therefore inert. [Pg.577]

Analogous side-chain oxidations occur in various biosynthetic pathways. The neurotransmitter norepinephrine, for instance, is biosynthesized from dopamine by a benzylic hydroxylation reaction. The process is catalyzed by the copper-containing enzyme dopamine /3-monooxygenase and occurs by a radical mechanism. A copper-oxygen species in the enzyme first abstracts the pro-R benzylic hydrogen to give a radical, and a hydroxyl is then transferred from copper to carbon. [Pg.577]

Similar treatment of an arenediazonium salt with CuCN yields the nitrile, ArCN, which can then be further converted into other functional groups such as carboxyl, for example, Sandmeyer reaction of o-methylbenzenediazonium bisulfate with CuCN yields o-methylbenzonitrile, which can be hydrolyzed to give o-methylbenzoic acid. This product can t be prepared from o-xvlene by the usual side-chain oxidation route because both methyl groups would be oxidized. [Pg.942]

CYP27A1 catalyzes the side chain oxidation (27-hydroxylation) in bile acid biosynthesis. Because bile acid synthesis is the only elimination pathway for cholesterol, mutations in the CYP27A1 gene lead to abnormal deposition of cholesterol and cholestanol in various tissues. This sterol storage disorder is known as cerebrotendinous xanthomatosis. CYP27B1 is the 1-alpha hydroxylase of vitamin D3 that converts it to the active vitamin form. The function of CYP27C1 is not yet known. [Pg.927]

Nitration vs side-chain oxidation of toluene in dilute MA was investigated by Namba et al (Ref 69). They found that addition of sulfuric acid accelerated both reactions but nitration more than oxidation. Addition of water to the MA favors oxidation as does an increase in reaction temp... [Pg.264]

Scheme 18 The reaction mechanism for the radical chain oxidation of poly(phenylhydrosilane). Scheme 18 The reaction mechanism for the radical chain oxidation of poly(phenylhydrosilane).
Figure 22. Side-chain oxidation with H2O2. Figure 22. Side-chain oxidation with H2O2.
Respiratory chain oxidation of 2 NADH Phosphorylation at substrate level Phosphorylation at substrate level... [Pg.143]

Both iron(III) and copper(II) inhibit the induced chain oxidation and, when present in sufficient quantity, iXp -t-X s becomes 1.0, the effect of oxygen is completely eliminated and only the induced oxidation of arsenic(III) by peroxydi-... [Pg.540]

The initiation step in the chain oxidation, reaction (43), is not affected by the presence of oxygen. SO4 radicals formed in (43) give arsenic(fV), reaction (45), initiating the following propagation cycle which leads to the reformation of As(IV)... [Pg.541]

In the presence of oxygen the chain-oxidation of arsenic(lll) consists of... [Pg.543]

The presence of arsenous acid causes a considerable change in the induced reaction the error in the H2O2 determination decreases to a minimum and an As(ril) error appears, while the S2OI error remains practically unchanged. Though reaction between arsenic(III) and peroxydisulphate is about ten times as rapid as that between hydrogen peroxide and peroxydisulphate, the extent of the induced reduction of peroxydisulphate remains practically unchanged. This indicates that, in the induced chain oxidation, reaction (85), is replaced by the more rapid reaction... [Pg.560]

FIGURE 3.6 Degradation of toluene by side-chain oxidation. [Pg.107]


See other pages where Oxidation chain is mentioned: [Pg.807]    [Pg.293]    [Pg.165]    [Pg.311]    [Pg.119]    [Pg.707]    [Pg.807]    [Pg.9]    [Pg.1285]    [Pg.249]    [Pg.968]    [Pg.84]    [Pg.92]    [Pg.93]    [Pg.95]    [Pg.97]    [Pg.99]    [Pg.101]    [Pg.143]    [Pg.143]   
See also in sourсe #XX -- [ Pg.150 ]

See also in sourсe #XX -- [ Pg.4 , Pg.43 , Pg.46 ]

See also in sourсe #XX -- [ Pg.340 , Pg.347 ]




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1.2.3.6- Tetrahydro-1,2,4-triazine 4-oxides ring-chain tautomerism

Aliphatic side-chain oxidation

Alkyl chain oxidation

Alkyl side chain oxidation

Alkylbenzene, biological oxidation side-chain bromination

Alkylbenzenes, oxidation side-chain substitution

Aromatic compounds side-chain oxidations

Aromatic hydrocarbons oxidation of side chains

Aromatic side chains oxidation

Aromatic side chains, oxidation reagents

Aromatic substitution side-chain oxidation

Bile acid chains, degradation oxidative

Branch-chained amino acids oxidation

Branched-chain amino acids oxidation

Carbohydrates, branched-chain oxidation

Chain extension with propylene oxide

Chain in oxidation

Chain initiation, oxidation

Chain mechanism of alcohol oxidation

Chain oxidation, multistep

Chain propagation in the oxidation

Chain propagation oxidations

Chain propagation, in oxidation

Chain reactions, oxidative

Chain termination reactions oxidations

Chain termination, oxidation

Chains polyphenylene oxide)

Cholesterol side chain oxidation

Cyanide chain partially oxidized

Cyclohexanol chain oxidation

Dehydration, ethylene oxide chain

Electron transport chain and oxidative phosphorylation

Electron-transfer oxidation chain process

Ethylene oxide chain length

Ethylene oxide side chain polymers

Fasting long-chain fatty acid oxidation

Fate of Trapped Acrylate Radicals. Chain Oxidation

Free radicals, liquid-phase chain oxidation

Free-radical Chain oxidation

Fuel oxidation chain reaction, inhibition

Heterogeneous process branched-chain oxidation

Hydrocarbon chain oxidation

Hydrocarbon oxidative side-chain substitution

Hydrocarbons side-chain oxidation

Ibuprofen side-chain oxidation

Liquid-phase chain oxidation, equations

Long chain dimethylamine oxide

Long-chain fatty acid oxidation disorders

Long-chain fatty acids oxidation

Long-chain fatty adds oxidation

Medium-chain triglycerides oxidation

Methylbenzenes, side-chain oxidation

Nitric Oxide as a Chain-Terminating Radical

Noncatalyzed Radical Chain Oxidation Cumene Hydroperoxide

Odd-chain fatty acids, oxidation

Overview of Radical Chain Oxidation Chemistry

Oxidation chain-breaking electron acceptors

Oxidation mechanism, radical-chain

Oxidation of Aromatic Side-chains

Oxidation of Methane in the Natural Atmosphere and OH Radical Chain Reaction

Oxidation of Odd-Chain-Length Fatty Acids

Oxidation of Side Chain

Oxidation of a side chain

Oxidation of cyclohexene. The hydroperoxide chain

Oxidation open-chain alkyl

Oxidation radical-chain

Oxidation reaction aromatic side chains

Oxidation reactions free radical chain reaction

Oxidation starch chains

Oxidative chain scission

Oxidative chain scission processes

Oxidative degradation chain scission

Oxidative degradation peroxidation chain

Oxidative phosphorylation Respiratory chain

Oxidative phosphorylation and the electron transport chain

Partial Oxidation of an Aliphatic Side Chain

Peroxisomal oxidation chain shortening

Poly oxidative chain scission

Poly radical chain oxidation

Polyethylene oxide) chains

Polyunsaturated long-chain fatty acids oxidation

Process parameters branched-chain oxidation reaction

Radical-chain process co-oxidation of two hydrocarbons

Reaction C.—Oxidation of the Side Chain in Aromatic Compounds

Side chain oxidation carboxylic acids

Side chain oxidation rings

Side chain oxidative

Side-chain oxidation, biological

Side-chain oxidized derivatives

Side-chain, oxidation

Steroids side-chain oxidation

Surface radical chain oxidation

Terminal Oxidation The Cytochrome Chain

The chain mechanism of ester oxidation

The chain mechanism of ether oxidation

Thermo-oxidative degradation free-radical chain mechanism

Toluene Side-Chain Oxidation

Topic 15 Respiratory chain, oxidative phosphorylation

Very long chain fatty acids oxidation

Weight oxide chain length

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