Extracurricular laboratory: Synthetic route of 1569-17-1

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Most of the compounds have physiologically active properties, and their biological properties are often attributed to the heteroatoms contained in their molecules, and most of these heteroatoms also appear in cyclic structures. A Journal, Berichte der Deutschen Chemischen Gesellschaft [Abteilung] B: Abhandlungen called Synthesis of 1,8-naphthyridine homologs and their hydrogenation, Author is Ochiai, Eiji; Miyaki, Komei, which mentions a compound: 1569-17-1, SMILESS is CC1=C2C=CC=NC2=NC=C1, Molecular C9H8N2, COA of Formula: C9H8N2.

In earlier work (CA 33:2525.5) it was found that Me 1,4-dihydroxy-2,5-naphthyridine-3-carboxylate (C. A. numbering, 5,8-dihydroxy-1,6-naphthyridine-7-carboxylate) and the 1-Cl compound on catalytic hydrogenation take up H only on the nonsubstituted pyridine ring. In continuation of this work, 2,4-dimethyl- (I) and 4-methyl-1,8-naphthyridine (II) have been synthesized and a similar phenomenon on hydrogenation has been observed. In the meantime some other 1,8-naphthyridines described in this paper have been prepared by analogous methods by Mangini (preceding abstract). 7-Amino derivative of I (0.5 g. from 2 g. 2,6-diaminopyridine, 2 g. CH2Ac2 and 1 g. fused ZnCl2 heated 3 hrs. at 120-30°), m. 220° (Ac derivative, pale yellow, m. 300°), converted by diazotization in 40% H2SO4 into the 7-HO compound, m. 251°, which, heated 30 min. in a sealed tube at 140° with POCl3, gives the 7-Cl compound, m. 146-7°; this, boiled 30 min. with 20% MeONa in MeOH, gives the 7-MeO compound, m. 65° (picrate, m. 188-9°). Hydrogenation of 1 g. of the HO compound in 20 g. alc. with 1 g. Ni-kieselguhr under 110 atm. of H for 10 hrs. at 170-80° gave, along with 0.6 g. unchanged material, 0.2 g. of a dihydro derivative, C10H12N2O, m. 175-80°. The Cl compound (0.5 g.), shaken in 10% KOH-MeOH with 0.2 g. of 20% Pd-charcoal and H until about 1.2 mols. H had been absorbed, and the product chromatographed in benzene through Al2O3, yielded about 0.05 g. I, m. 85-6° (HCl salt, decomposes 240°; picrate, decomposes 204-6°; methiodide, yellow needles with 1 H2O, m. 93-4; chloroplatinate, I.H2PtCl6, decomposes 242-4°; chloroaurate, decomposes 166-7°). When 0.1 g. of the Cl compound in 10 cc. of 10% KOH-MeOH was hydrogenated to saturation with 0.5 g. of 20% Pd-charcoal it yielded the tetrahydro derivative (III) of I described below. With 1.2 g. of the Cl compound in 20 cc. of 5% KOH-MeOH, 0.5 g. PdO-CaCO3 and a trace of Pd-charcoal, the hydrogenation stopped in 30 min. (about 170 cc. H absorbed) and 0.8 g. I was obtained. Shaken in 10 cc. AcOH with 0.1 g. Pt oxide and H to saturation, 0.5 g. I absorbed about 160 cc. H and yielded 0.5 g. of a tetrahydro derivative (III), m. 118°, giving a pos. Liebermann reaction (picrate, m. 207°; Ac derivative, m. 42-3°); III was also obtained in 0.85-g. yield from 1 g. I in 50 cc. cyclohexane and 5 cc. alc. with 1 g. Raney Ni heated under an initial H pressure of 70 atm. 2 hrs. at 120° and 2 hrs. at 190°. III was unchanged by 4 hrs. treatment in AcOH with Pt oxide and 110 atm. H pressure, at room temperature With Na in boiling alc., however, it yielded the decahydro derivative of I, easily subliming needles, m. 92-3° (di-Ac derivative, thick oil, b0.02 135-45°). 2,7-Dichloro-4-methyl-1,8-naphthyridine in 10% KOH-MeOH hydrogenated with PdO-CaCO3 and a trace of Pd-charcoal gave, together with a mono-Cl compound, C9H7ClN2, m. 104°, chiefly (about 70%) II, b0.05 147-8° (picrate, decomposes 204-5°; perchlorate, m. 180-1°). II (1 g.) in 10 cc. AcOH with 0.5 g. Pt oxide and H yielded a mixture of 2 isomeric tetrahydro derivatives, separated by fractional crystallization from petr. ether: 0.2 g. of a more soluble isomer A (IV), m. 62-3°, giving a pos. Liebermann reaction (Bz derivative, m. 86-7°), and about 0.8 g. of a less soluble isomer B (V), m. 102-3° (picrate, decomposes 248°; Bz derivative, m. 105-6°; nitro derivative, m. 217-18° and giving a pos. Liebermann reaction, prepared by treating the tetrahydride in cold H2SO4 (dry ice-acetone) with fuming HNO3 (d.1.6), pouring on ice, crystallizing from alc., heating the crystals (m. 124-5°) in concentrated H2SO4 at 60°, again pouring on ice, filtering, making alk. with Na2HPO4 and extracting with ether). V is unchanged by hydrogenation in AcOH with PtO and 65 atm. H pressure. With Na in boiling AmOH, both isomers yield the same (racemic) decahydro derivative of II, b0.1 70-80°, m. 87°, gives a pos. Liebermann reaction (picrate, decomposes 210°). The structures of III, IV and V have not been definitely established but the following considerations make it highly probable what they are. The work of earlier investigators on the hydrogenation of quinoline homologs with Ni and H under pressure and with Sn and HCl has shown that Me groups have a disturbing influence on the hydrogenation of the ring half on which they are substituted whereas Na and alc. readily hydrogenate the Me-substituted rings. This disturbing effect of Me groups is ascribed to the inductive effect of the Me group. III is considered to be the 5,6,7,8-tetrahydro compound To further confirm this, III was heated in a little alc. with an excess of ClCH2COMe for 4 hrs. at 100°; the resulting addition product, C15H21ClN22O2, m. 181-2°, allowed to stand 1 day in a little water with 2 drops of 10% Na3CO3, gave, in addition to unchanged III, a resin whose blue Ehrlich reaction pointed to the presence of an indolizine ring. Such a ring can be formed only from a nonhydrogenated 2-methylpyridine. IV is considered to be the 1,2,3,4- and V the 5,6,7,8-tetrahydro compound because the latter is formed in the larger amount; its higher m. p. is also in harmony with such an assumption.

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1,8-Naphthyridine – Wikipedia,
1,8-Naphthyridine | C8H6N2 – PubChem

Some scientific research tips on 2689-65-8

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Safety of 5-Iodo-2-furaldehyde. The protonation of heteroatoms in aromatic heterocycles can be divided into two categories: lone pairs of electrons are in the aromatic ring conjugated system; and lone pairs of electrons do not participate. Compound: 5-Iodo-2-furaldehyde, is researched, Molecular C5H3IO2, CAS is 2689-65-8, about A simple preparative synthesis of epoxy[1,3]oxazino(or oxazolo)[2,3-a]isoindoles and their thia analogues via IMDAF. Author is Zubkov, Fedor I.; Galeev, Timur R.; Nikitina, Eugeniya V.; Lazenkova, Irina V.; Zaytsev, Vladimir P.; Varlamov, Alexey V..

Azomethines, easily prepared from 5-(R)-furfurals and 1,3- or 1,2-amino alcs. (aminothiols), react under mild conditions with maleic anhydride affording 8,10a-epoxy[1,3]oxa(thia)zino[2,3-a]isoindole-7- and 7,9a-epoxy[1,3]oxa(thia)zolo[2,3-a]isoindole-6-carboxylic acids. The reaction proceeds through initial N-acylation with subsequent intramol. exo-Diels-Alder cycloaddition and stereoselectively leads to the exo adducts. The ‘one-pot’ synthetic protocol is also presented.

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Discovery of 1569-17-1

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Most of the natural products isolated at present are heterocyclic compounds, so heterocyclic compounds occupy an important position in the research of organic chemistry. A compound: 1569-17-1, is researched, SMILESS is CC1=C2C=CC=NC2=NC=C1, Molecular C9H8N2Journal, Journal of Heterocyclic Chemistry called Naphthyridine chemistry. VIII. Mass spectra of the 1,x-naphthyridines and some of their methyl derivatives, Author is Paudler, William W.; Kress, Thomas J., the main research direction is NAPHTHYRIDINES; MASS SPECTRA NAPHTHYRIDINES; QUINOLINE.Product Details of 1569-17-1.

The mass spectra of the four parent 1,x-naphthyridines, the 2-, 3-, and 4-monomethyl-1,5-, 1,6-, and 1,8-naphthyridines, seven dimethyl-1,8-naphthyridines, and one trimethyl-1,8-naphthyridine are reported. Evidence for an azatropylium ion intermediate in the fragmentation of the methyl compounds is presented. The fragmentation modes of the naphthyridines are similar to those for the quinolines in addition to several new processes.

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The effect of the change of synthetic route on the product 1569-17-1

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Magee, Thomas V.; Ripp, Sharon L.; Li, Bryan; Buzon, Richard A.; Chupak, Lou; Dougherty, Thomas J.; Finegan, Steven M.; Girard, Dennis; Hagen, Anne E.; Falcone, Michael J.; Farley, Kathleen A.; Granskog, Karl; Hardink, Joel R.; Huband, Michael D.; Kamicker, Barbara J.; Kaneko, Takushi; Knickerbocker, Michael J.; Liras, Jennifer L.; Marra, Andrea; Medina, Ivy; Nguyen, Thuy-Trinh; Noe, Mark C.; Obach, R. Scott; O’Donnell, John P.; Penzien, Joseph B.; Reilly, Usa Datta; Schafer, John R.; Shen, Yue; Stone, Gregory G.; Strelevitz, Timothy J.; Sun, Jianmin; Tait-Kamradt, Amelia; Vaz, Alfin D. N.; Whipple, David A.; Widlicka, Daniel W.; Wishka, Donn G.; Wolkowski, Joanna P.; Flanagan, Mark E. published the article 《Discovery of Azetidinyl Ketolides for the Treatment of Susceptible and Multidrug Resistant Community-Acquired Respiratory Tract Infections》. Keywords: antibacterial azetidinyl ketolide preparation structure activity respiratory tract infection; crystal structure antibacterial azetidinyl ketolide preparation structure activity.They researched the compound: 4-Methyl-1,8-naphthyridine( cas:1569-17-1 ).Related Products of 1569-17-1. Aromatic heterocyclic compounds can be divided into two categories: single heterocyclic and fused heterocyclic. In addition, there is a lot of other information about this compound (cas:1569-17-1) here.

Respiratory tract bacterial strains are becoming increasingly resistant to currently marketed macrolide antibiotics. The current alternative telithromycin (1) from the newer ketolide class of macrolides addresses resistance but is hampered by serious safety concerns, hepatotoxicity in particular. We have discovered a novel series of azetidinyl ketolides that focus on mitigation of hepatotoxicity by minimizing hepatic turnover and time-dependent inactivation of CYP3A isoforms in the liver without compromising the potency and efficacy of 1.

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Application of 2689-65-8

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HPLC of Formula: 2689-65-8. The protonation of heteroatoms in aromatic heterocycles can be divided into two categories: lone pairs of electrons are in the aromatic ring conjugated system; and lone pairs of electrons do not participate. Compound: 5-Iodo-2-furaldehyde, is researched, Molecular C5H3IO2, CAS is 2689-65-8, about Interaction of furan derivatives with antipyrine. Author is Shalygin, A. F..

5-(R-substituted furfurals (I, R = Br or iodo) were prepared Condensation of I (R = Br or iodo) with antipyrine (II) gave diantipyryl-5-(R-substituted)furylmethanes (III, R = Br or iodo), resp. Thus, a mixture of 28.8 g. furfural in 120 ml. CH2Cl2, 0.005 g. S, and 0.05 g. hydroquinone was heated at ∼100° in a N current, 57.5 g. Br in 150 ml. CH2Cl2 added in 2 hrs., and the mixture heated 2 hrs. to give 34.3% I (R = Br), m. 81-2°. A mixture of 5.6 g. I (R = Br), 5.8 g. anhydrous KI, and 30 ml. AcOH refluxed 1.5 hrs. and kept 1 hr. gave 78.8% I (R = iodo), m. 125°. To 12.5 millimoles II in 10 ml. H2O was added 6.25 millimoles I (R = Br) in 10 ml. EtOH over in 0.5 hr. at 80-5° and the mixture worked up to give 84.2% III (R =Br). HCl salt m. 100-1° (H2O-alc.). Similarly equimol. amounts of I (R = iodo) and II gave 80% III (R = iodo). HCL salt m. 83° (EtOH).

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Chemical Properties and Facts of 1569-17-1

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HPLC of Formula: 1569-17-1. The mechanism of aromatic electrophilic substitution of aromatic heterocycles is consistent with that of benzene. Compound: 4-Methyl-1,8-naphthyridine, is researched, Molecular C9H8N2, CAS is 1569-17-1, about Naphthyridine chemistry. VIII. Mass spectra of the 1,x-naphthyridines and some of their methyl derivatives. Author is Paudler, William W.; Kress, Thomas J..

The mass spectra of the four parent 1,x-naphthyridines, the 2-, 3-, and 4-monomethyl-1,5-, 1,6-, and 1,8-naphthyridines, seven dimethyl-1,8-naphthyridines, and one trimethyl-1,8-naphthyridine are reported. Evidence for an azatropylium ion intermediate in the fragmentation of the methyl compounds is presented. The fragmentation modes of the naphthyridines are similar to those for the quinolines in addition to several new processes.

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The three-dimensional configuration of the ester heterocycle is basically the same as that of the carbocycle. Compound: 5-Iodo-2-furaldehyde(SMILESS: IC1=CC=C(O1)C=O,cas:2689-65-8) is researched.Related Products of 2689-65-8. The article 《Studies in the area of furan acetal compounds. VIII. Synthesis of (2-furyl)di(acetamido)methanes》 in relation to this compound, is published in Khimiya Geterotsiklicheskikh Soedinenii. Let’s take a look at the latest research on this compound (cas:2689-65-8).

Furfurylidenebisacetamides (I, R = H, Me, Br) were obtained in 38-50% yields by condensation of AcNH2 with the corresponding 2-furaldehyde in C6H6 containing KU-2. 2-Furyl-1,3-dioxepanes (II, R = H, Me, Br, I, NO2) were obtained in 70-8% yields by boiling HO(CH2)4OH with the corresponding 2-furaldehyde in C6H6 containing KU-2.

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An update on the compound challenge: 2689-65-8

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The reaction of an aromatic heterocycle with a proton is called a protonation. One of articles about this theory is 《Catalytic hydrogenation of coumarone》. Authors are Shuikin, N. I.; Dmitriev, I. I.; Dobrynina, T. P..The article about the compound:5-Iodo-2-furaldehydecas:2689-65-8,SMILESS:IC1=CC=C(O1)C=O).Related Products of 2689-65-8. Through the article, more information about this compound (cas:2689-65-8) is conveyed.

Hydrogenation of coumarone (I) was carried on by the method and with the catalysts previously described (C. A. 33, 1316.1-2). Under all the conditions used the reaction is accompanied by partial cleavage of the furan ring and the formation of 2-ethylcyclohexanol (II) and β-cyclohexylethyl alc. (III). Passing I with H over Pd deposited on asbestos at 175° formed up to 80% octahydrocoumarone (IV), II and some III. In a similar reaction with the Ni catalyst the yield of II was increased to about 50% and that of IV reduced to 21-2%. The liquid-phase hydrogenation of I in EtOH at 20-50° and atm. pressure in the presence of Pt black and platinized charcoal proceeds analogously, but with the intermediate formation of coumaran (2,3-dihydrobenzofuran). IV, b750 170-2°, d420 0.9636, nD20 1.4683, M. R. 36.4. II, b756 182-4°, d420 0.9214, nD20 1.4631, M. R. 38.31. III, b756 203-6°, d420 0.9162, nD20 1.4643.

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Interesting scientific research on 2689-65-8

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Related Products of 2689-65-8. The protonation of heteroatoms in aromatic heterocycles can be divided into two categories: lone pairs of electrons are in the aromatic ring conjugated system; and lone pairs of electrons do not participate. Compound: 5-Iodo-2-furaldehyde, is researched, Molecular C5H3IO2, CAS is 2689-65-8, about Thermographic study of the reaction of primary aryl amines with 5-halofurfurals. Author is Tovmas’yan, I. K.; Lyutkin, N. I.; Myasnikova, T. P..

Thermograms of the reaction of 5-halofurfural with primary aryl amines were studied. The 1st macrostage corresponded to the formation of 5-halofurfurylidenearyl amines, the 2nd stage to N-[5-arylaminofurfurylidene]arylamine. Effect of substitutes in amine and aldehyde components on the 1st and the 2nd reaction stages was comparatively analyzed from the thermogram data.

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Can You Really Do Chemisty Experiments About 2689-65-8

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The preparation of ester heterocycles mostly uses heteroatoms as nucleophilic sites, which are achieved by intramolecular substitution or addition reactions. Compound: 5-Iodo-2-furaldehyde( cas:2689-65-8 ) is researched.Electric Literature of C5H3IO2.Lauzardo, N.; Mocelo, R.; Padron, G.; Buttner, J.; Fanghaner, F. published the article 《Comparative study by mass spectrometry of the fragmentation of 5-substituted furfurals》 about this compound( cas:2689-65-8 ) in Ciencias, Serie 3: Quimica. Keywords: furfural fragmentation mass spectra; methylfurfural fragmentation pathway; chlorofurfural fragmentation pathway; bromofurfural fragmentation pathway; iodofurfural fragmentation pathway; nitrofurfural fragmentation pathway; carbomethoxyfurfural fragmentation pathway; carboxyfurfural fragmentation pathway; substituent furfural mass spectra. Let’s learn more about this compound (cas:2689-65-8).

A comparative study on the fragmentation of a series of 5-substituted furfurals (X = H, CH3, Cl, Br, I, NO2, COOCH3, COOH) was made. Depending on the nature of the substituent, 2 main pathways of fragmentation were observed One of them starts with the fragmentation of the aldehyde group (X = H, CH3, Cl, Br, I). The other starts with the fragmentation of substituents (X = NO2, COOCH3, COOH). The spectra are discussed on the basis of these 2 fragmentation pathways.

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