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Pyridine rings

An alternative drivirg force could involve a donor - acceptor interaction. The electron-poor pyridine ring that is coordinated to the copper cation can act as electron acceptor with respect to the aromatic ring of the -amino acid. The fact that donating substituents on the amino acid increase the efficiency... [Pg.99]

Clearly, the use of diamine 4.43 as a coordinating auxiliary is not successful. However, we anticipated that, if the basicity of the tertiary amine group of the diamine could be reduced, the elimination reaction will be less efficient. We envisaged that replacement of the tertiary amine group in 4.43 by a pyridine ring might well solve the problem. [Pg.116]

The 5-position is the preferred site for sulfonation (58. 392). This position is more reactive than any of the pyridine ring in. V-[pyridyl-(2)]-thiazolyl-(2)-amine (178) (132, 382, 383). [Pg.75]

In the case of a pyridinium salt, an indirect proof of the correctness of this mechanism can be found in the presence of a heptamethine thiazolo-cyanine, together with monomethine. which results unambiguously from 19 by the known opening of the pyridine ring (Scheme 25) (52). [Pg.41]

Low yield in pentamethine thiazolocyanine results also from the fission of the pyridine ring in the presence of 2-chloro-3.3-dimethylindolenine (544). Explanations of this unusual reaction have been given (Scheme 44) (67). [Pg.56]

Heterocyclic aromatic compounds can be polycyclic as well A benzene ring and a pyridine ring for example can share a common side m two different ways One way gives a compound called quinoline the other gives isoquinoline... [Pg.460]

Thermally stable POD films containing pyridine rings have potential appHcation as reverse osmosis membranes (58). [Pg.534]

Miscellaneous Reactions. Some hydantoin derivatives can serve as precursors of carbonium—immonium electrophiles (57). 5-Alkoxyhydantoins are useful precursors of dienophiles (17), which undergo Diels-Alder cycloadditions under thermal conditions or in the presence of acid catalysis (58). The pyridine ring of Streptonigrine has been constmcted on the basis of this reaction (59). [Pg.253]

The alkylation of pyridine [110-86-1] takes place through nucleophiUc or homolytic substitution because the TT-electron-deficient pyridine nucleus does not allow electrophiUc substitution, eg, Friedel-Crafts alkylation. NucleophiUc substitution, which occurs with alkah or alkaline metal compounds, and free-radical processes are not attractive for commercial appHcations. Commercially, catalytic alkylation processes via homolytic substitution of pyridine rings are important. The catalysts effective for this reaction include boron phosphate, alumina, siHca—alurnina, and Raney nickel (122). [Pg.54]

GeneraHy, hydrophobic substituents on the pyridine ring reduce water solubHity, polar ones capable of hydrogen bonding as acceptor or donor, iacrease it. [Pg.323]

Carbon Substituents. Alkyl groups at positions 2 and 4 of a pyridine ring are more reactive than either those at the 3-position of a pyridine ring or those attached to a benzene ring. Carbanions can be formed readily at alkyl carbons attached at the 2- and 4-positions. This increased chemical reactivity has been used to form 2- and 4-(phenylpropyl)pyridines, eg, 4-(3-phenylpropyl)pyridine [2057-49-0] (21) (24). [Pg.326]

Vinylpyridine (23) came into prominence around 1950 as a component of latex. Butadiene and styrene monomers were used with (23) to make a terpolymer that bonded fabric cords to the mbber matrix of automobile tires (25). More recendy, the abiUty of (23) to act as a Michael acceptor has been exploited in a synthesis of 4-dimethylaminopyridine (DMAP) (24) (26). The sequence consists of a Michael addition of (23) to 4-cyanopyridine (15), replacement of the 4-cyano substituent by dimethylamine (taking advantage of the activation of the cyano group by quatemization of the pyridine ring), and base-cataly2ed dequatemization (retro Michael addition). 4-r)imethyl aminopyri dine is one of the most effective acylation catalysts known (27). [Pg.326]

The N-oxide function has proved useful for the activation of the pyridine ring, directed toward both nucleophilic and electrophilic attack (see Amine oxides). However, pyridine N-oxides have not been used widely ia iadustrial practice, because reactions involving them almost iavariably produce at least some isomeric by-products, a dding to the cost of purification of the desired isomer. Frequently, attack takes place first at the O-substituent, with subsequent rearrangement iato the ring. For example, 3-picoline N-oxide [1003-73-2] (40) reacts with acetic anhydride to give a mixture of pyridone products ia equal amounts, 5-methyl-2-pyridone [1003-68-5] and 3-methyl-2-pyridone [1003-56-1] (11). [Pg.328]

Pyridine ring syntheses (48) can be classified into essentially two categories ring synthesis from nonheterocyclic compounds, and synthesis from other ring systems. The synthesis of pyridine derivatives by transformations on the pyridine ring atoms and side-chain atoms have been considered in the previous section. [Pg.330]

Ring Synthesis From Nonheterocyclic Compounds. These methods may be further classified based on the number of bonds formed during the pyridine ring formation. Synthesis of a-picoline (2) from 5-oxohexanenitrile is a one-bond formation reaction (eq. 16) (49). The nitrile is obtained by reaction between acetone and acrylonitrile (50). If both reaction steps are considered together, the synthesis must be considered a two-bond forming one, ie, formation of (2) from acetone and acrylonitrile in a single step comes under the category of two-bond formation reaction. [Pg.330]

Reactions. Quinoline exhibits the reactivity of benzene and pyridine rings, as weU as its own unique reactions. [Pg.389]

Ha.logena.tlon, One review provides detailed discussion of direct and indirect methods for both mono- and polyhalogenation (20). As with nitration, halogenation under acidic conditions favors reaction in the benzenoid ring, whereas reaction at the 3-position takes place in the neutral molecule. Radical reactions in the pyridine ring can be important under more vigorous conditions. [Pg.389]

Reduction. Quinoline may be reduced rather selectively, depending on the reaction conditions. Raney nickel at 70—100°C and 6—7 MPa (60—70 atm) results in a 70% yield of 1,2,3,4-tetrahydroquinoline (32). Temperatures of 210—270°C produce only a slightly lower yield of decahydroquinoline [2051-28-7]. Catalytic reduction with platinum oxide in strongly acidic solution at ambient temperature and moderate pressure also gives a 70% yield of 5,6,7,8-tetrahydroquinoline [10500-57-9] (33). Further reduction of this material with sodium—ethanol produces 90% of /ra/ j -decahydroquinoline [767-92-0] (34). Reductions of the quinoline heterocycHc ring accompanied by alkylation have been reported (35). Yields vary widely sodium borohydride—acetic acid gives 17% of l,2,3,4-tetrahydro-l-(trifluoromethyl)quinoline [57928-03-7] and 79% of 1,2,3,4-tetrahydro-l-isopropylquinoline [21863-25-2]. This latter compound is obtained in the presence of acetone the use of cyanoborohydride reduces the pyridine ring without alkylation. [Pg.390]

The first synthesis of amphiphilic porphyrin molecules involved replacement of the phenyl rings in TPP with pyridine rings, quaternized with C2QH 2Br to produce tetra(3-eicosylpyridinium)porphyrin bromide (3) (36). The pyridinium nitrogen is highly hydrophilic the long C2Q hydrocarbon serves as the hydrophobic part. Tetra[4-oxy(2-docosanoic acid)]phenyl-porphyrin (4) has also been used for films (37). [Pg.533]

Azonia substitution at a naphthalene bridgehead position gives the quinolizinium ion (16). Oxonia substitution, elsewhere, forms the 1- and 2-benzopyrylium ions (17) and (18). The two most well-known monoaza systems with three aromatie fused rings are aeridine (19), derived structurally from anthraeene, and phenanthridine (20), an azaphenanthrene. The better-known diaza systems inelude phenazine (21) and 1,10-phenanthroline (22), while systems with three linearly fused pyridine rings are ealled anthyridines, e.g. the 1,9,10-isomer (23). [Pg.3]

The cleavage of fused pyrazines represents an important method of synthesis of substituted pyrazines, particularly pyrazinecarboxylic acids. Pyrazine-2,3-dicarboxylic acid is usually prepared by the permanganate oxidation of either quinoxalines or phenazines. The pyrazine ring resembles the pyridine ring in its stability rather than the other diazines, pyridazine and pyrimidine. Fused systems such as pteridines may easily be converted under either acidic or basic conditions into pyrazine derivatives (Scheme 75). [Pg.190]

Nitro groups in the pyridine ring are reduced to amines catalytically, but side reactions can occur with dithionite, leading to, e.g. (92) (75JOC3608). [Pg.213]


See other pages where Pyridine rings is mentioned: [Pg.229]    [Pg.178]    [Pg.84]    [Pg.85]    [Pg.93]    [Pg.95]    [Pg.99]    [Pg.101]    [Pg.107]    [Pg.175]    [Pg.176]    [Pg.73]    [Pg.112]    [Pg.72]    [Pg.70]    [Pg.7]    [Pg.373]    [Pg.646]    [Pg.924]    [Pg.341]    [Pg.165]    [Pg.166]    [Pg.129]    [Pg.334]    [Pg.4]    [Pg.201]    [Pg.207]    [Pg.210]    [Pg.212]   
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See also in sourсe #XX -- [ Pg.77 , Pg.112 ]




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1,5-Dioxo - pyridine ring

1.2.3- Triazolo pyridine ring synthesis

1.2.3- Triazolo pyridine ring-opening

1.2.4- Triazines pyridine ring

4-Pyridone rings pyridine ring

Alkaloids pyridine ring

Benzene pyridine ring

Construction of the Pyridine Ring

Formation of a pyridine ring fused to two octahydroacridine units

Friedlander pyridine ring

Friedlander pyridine ring synthesis

Fused pyridine ring

Fusing rings to pyridines quinolines and isoquinolines

Heterocyclics (s. a. Ring pyridines

Imidazo pyridine ring

Imidazo pyridine ring synthesis

Isoxazoles pyridine ring

Membered rings - IN - pyridines

Nitrotetrazolo pyridines, ring

Pyrazolo pyridine ring

Pyrazolo pyridine ring synthesis

Pyridine 1-oxide ring expansion

Pyridine 2-amino-4-methyl-, ring synthesis

Pyridine N-oxide ring

Pyridine compounds rings

Pyridine five-membered rings

Pyridine hydrochloride benzene ring

Pyridine ring annellation

Pyridine ring construction/formation

Pyridine ring containing

Pyridine ring electrophilic substitutions

Pyridine ring formation

Pyridine ring hydrogenation

Pyridine ring phenyl analogs

Pyridine ring protonization

Pyridine ring protonization temperature

Pyridine ring quaternary salts

Pyridine ring quinolines

Pyridine ring reactivity

Pyridine ring reduction

Pyridine ring reductive pathway

Pyridine ring selective reduction

Pyridine ring synthesis from oximes

Pyridine ring, 1,2,3,4-tetrahydro

Pyridine ring, 1,2,3,4-tetrahydro 3- amino

Pyridine ring, band frequencies

Pyridine ring, cleavage

Pyridine ring, stability

Pyridine rings, biosynthesis

Pyridine sulfur trioxide complex ring opening

Pyridine/alumina ring)

Pyridines 1,4-dihydro-, ring synthesis

Pyridines electrocyclic ring opening

Pyridines ring synthesis

Pyridines ring-closing metathesis reaction

Pyridines ring-opening polymerization

Pyridines, ring anisotropy

Pyridinic ring

Pyridinic ring

Pyrimidine-pyridine ring interconversion

Reactivity of the Pyridine Ring

Ring contraction pyridine rings

Ring contraction pyridines

Ring currents pyridine

Ring hydrogenation pyridine rings

Ring vibrations pyridine

Ring-stretching band, pyridine coordinated

Six-membered ring systems Pyridines and benzo derivatives

Synthesis of pyridine ring

The Hebrew University, Jerusalem, Israel Six-Membered Ring Systems Pyridine and Benzo Derivatives

Triazolo pyridine ring system

Typical Ring Synthesis of a Pyridine Involving Only C-Heteroatom Bond Formation

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