Final Thoughts on Chemistry for 455-70-9

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Ando, Makoto; Sato, Nagaaki; Nagase, Tsuyoshi; Nagai, Keita; Ishikawa, Shiho; Takahashi, Hirobumi; Ohtake, Norikazu; Ito, Junko; Hirayama, Mioko; Mitobe, Yuko; Iwaasa, Hisashi; Gomori, Akira; Matsushita, Hiroko; Tadano, Kiyoshi; Fujino, Naoko; Tanaka, Sachiko; Ohe, Tomoyuki; Ishihara, Akane; Kanatani, Akio; Fukami, Takehiro published the article 《Discovery of pyridone-containing imidazolines as potent and selective inhibitors of neuropeptide Y Y5 receptor》. Keywords: antiobesity neuropeptide Y5 receptor inhibitor pyridone imidazoline preparation SAR.They researched the compound: Methyl 5-fluoro-3-pyridinecarboxylate( cas:455-70-9 ).HPLC of Formula: 455-70-9. 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:455-70-9) here.

A series of 2-pyridone-containing imidazoline derivatives was synthesized and evaluated as neuropeptide Y Y5 receptor antagonists. Optimization of the 2-pyridone structure on the 2-position of the imidazoline ring led to identification of 1-(difluoromethyl)-5-[(4S,5S)-4-(4-fluorophenyl)-4-(6-fluoropyridin-3-yl)-5-methyl-4,5-dihydro-1H-imidazol-2-yl]pyridin-2(1H)-one (7m, I). Compound 7m displayed statistically significant inhibition of food intake in an agonist-induced food intake model in SD rats and no adverse cardiovascular effects in anesthetized dogs. In addition, markedly higher brain penetrability and a lower plasma Occ90 value were observed in P-gp-deficient mdr1a (-/-) mice compared to mdr1a (+/+) mice after oral administration of 7m.

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In organic chemistry, atoms other than carbon and hydrogen are generally referred to as heteroatoms. The most common heteroatoms are nitrogen, oxygen and sulfur. Now I present to you an article called Proximity effects in pyridines. Proton chemical shifts in substituted methyl pyridinecarboxylates, published in 1975, which mentions a compound: 455-70-9, mainly applied to pyridinecarboxylate NMR proximity effect; substituent effect NMR pyridinecarboxylate, HPLC of Formula: 455-70-9.

The chem. shifts in 6 series of substituted Me pyridinecarboxylates were measured and interpreted in terms of proximity effects. The shifts for ring H ortho and para to the substituent were explained by additive ester, nitrogen, and substituent effects. The results for meta H indicated substituent-nitrogen interactions, especially when both substituent and H were adjacent N. Similar results were obtained for the ester H.

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Discovery of 455-70-9

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The chemical properties of alicyclic heterocycles are similar to those of the corresponding chain compounds. Compound: Methyl 5-fluoro-3-pyridinecarboxylate, is researched, Molecular C7H6FNO2, CAS is 455-70-9, about Substituted Dihydropyridine Synthesis by Dearomatization of Pyridines, the main research direction is dihydropyridine preparation regioselective; pyridine triflic anhydride dearomatization trimethylamine borane; phenyl chloroformate pyridine dearomatization trimethylamine borane; boranes; chemoselectivity; nitrogen heterocycles; reduction; synthetic methods.Synthetic Route of C7H6FNO2.

The synthesis of a broad variety of N-substituted 1,4-dihydropyridines I [R = H, 3-Me, 3,5-di-Br, etc.; R1 = Tf, CO2Ph] and 1,2-dihydropyridines II [R2 = F, Cl, CF3, Ph, SPh; R3 = H, F, trimethylsilyl] by very mild and selective reduction with amine borane was reported for the first time.

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Discovery of 455-70-9

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In organic chemistry, atoms other than carbon and hydrogen are generally referred to as heteroatoms. The most common heteroatoms are nitrogen, oxygen and sulfur. Now I present to you an article called Hypervalent Iodine(III) Catalyzed Balz-Schiemann Fluorination under Mild Conditions, published in 2018, which mentions a compound: 455-70-9, mainly applied to arenediazonium tetrafluoroborate Balz Schiemann fluorination hypervalent iodine catalyst; fluoride aryl preparation; Balz-Schiemann reaction; aryl fluorides; diazonium salts; fluorination; iodine, Category: dioxole.

An unprecedented hypervalent iodine(III)-catalyzed Balz-Schiemann reaction was described. In the presence of a hypervalent iodine compound, the fluorination reaction proceeded under mild conditions (25-60 °C), and featured a wide substrate scope and good functional-group compatibility.

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The reaction of an aromatic heterocycle with a proton is called a protonation. One of articles about this theory is 《Inhibition of bacteria by 5-fluoronicotinic acid and other analogs of nicotinic acid》. Authors are Streigbtoff, Frank.The article about the compound:Methyl 5-fluoro-3-pyridinecarboxylatecas:455-70-9,SMILESS:COC(=O)C1=CC(F)=CN=C1).Computed Properties of C7H6FNO2. Through the article, more information about this compound (cas:455-70-9) is conveyed.

Several compounds related to 5-fluoronicotinic acid (I) have been demonstrated to inhibit Streptococcus spp. (Viridans group), Staphylococcus aureus, Escherichia coli, and Lactobacillus plan- tarum. The most active compounds were I and 5-fluoronicotin- amide (II). The growth of Streptococcus spp. was inhibited more than 5% by 0.05 γ/ml. of I or 0.5 of II. The inhibition of Streptococcus from 1 part of I or II was reversed by 4 and 2 parts of nicotinic acid, resp. The inhibition of E. coli from 100 parts of I or II was reversed by I part of nicotinic acid. Inhibitions by most other active compounds could be reversed by nicotinic acid. In experiments with mice, 8 compounds related to I had activity against Streptococcus pyogenes; I, II, and 5-fluoro-N-dimethyl- aminomethylnicotinamide protected all mice at 83 mg./kg. The action of 200 mg./kg. I was reversed by 20 mg./kg. of nicotinic acid. The activity of I was not increased by modifica- tions at the number 3 or 5 positions on the pyridine ring or by any other structural changes.

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Related Products of 455-70-9. 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: Methyl 5-fluoro-3-pyridinecarboxylate, is researched, Molecular C7H6FNO2, CAS is 455-70-9, about Preparation of 5-fluoronicotinic acid and 5-fluoronicotinamide. Author is Hawkins, G. F.; Roe, Arthur.

2-Amino-3-methylpyridine (50 g.) in 240 ml. concentrated H2SO4, cooled to 5°, was slowly treated with a mixture of 35 ml. each of concentrated H2SO4 and concentrated HNO3, with the temperature kept below 10°, and allowed to warm up to 30° overnight. [If the solution was then poured over cracked ice, neutralized, and filtered, the nitro derivative (I) could be obtained, but it was preferred not to isolate I.] To the solution, kept below 40° and stirred, was slowly added 35 ml. concentrated HNO3, approx. 50 ml. of the mixture (A) added to 100 ml. H2O, and heated to 120°. The balance of (A) was added in 50-ml. portions when gas evolution ceased, the mixture was cooled by the addition of 1 kg. ice, and the precipitate filtered off (46 g.); an addnl. 5 g. could be obtained by addition of 10 g. NaNO2 to the filtrate, and another 6 g. was obtainable by neutralizing the filtrate from the NaNO2 treatment. The combined products were dissolved in the min. amount of dilute NaOH, stirred with C, and filtered, giving 51 g. (71.5%) of fairly pure 2-hydroxy-3-methyl-5-nitropyridine (II), greenish yellow, m. 228.5-9.5°, after crystallizations from H2O and decolorization. II was also prepared by adding 15 ml. fuming HNO3 and 20 ml. concentrated H2SO4 to 20 g. 2-hydroxy-3-methylpyridine in 40 ml. concentrated H2SO4 at a temperature below 40°, allowing to warm up to 50° during 2.5 hrs., pouring over cracked ice, and filtering, washing, and drying the precipitate over P2O5, giving 13.5 g. cream-colored II, m. 228.5-9.5°. II (83 g.) and 400 ml. POCl3 were refluxed 6 hrs., the excess POCl3 distilled off, the residue poured over cracked ice, filtered, the filtrate neutralized with NaOH solution, extracted twice with 100-ml. portions of Et2O, the precipitate also dissolved in the Et2O solution, a lower liquid layer removed, and the solution dried over CaO; distillation yielded 81.5 g. (87.6%) 2-chloro-3-methyl-5-nitropyridine (III), m. 47-8°, b18 145.5°. III was also prepared from I by diazotization in concentrated HCl, in 32% yield with II as a by-product. To 24 g. III was added 100 ml. AcOH, 14 g. AcONa, and 5 g. Pd-charcoal catalyst, the mixture reduced with H at 15-25 lb. pressure (even after heating, only 80% of the theoretical H was absorbed), the hot solution filtered, evaporated to dryness, concentrated NaOH added, the mixture heated 30 min., extracted, after cooling, with three 75-g. portions of Et2O, and the extracts dried over NaOH and distilled, giving 9 g. (51%) 3-methyl-5-aminopyridine (IV), m. 57-9°, b21 153°. To 12 g. IV in 50 ml. 42% HBF4 and 75 ml. EtOH at -10° was added EtONO, at a temperature kept below -5°, until no more precipitation occurred, the solution poured into 75 ml. absolute EtOH and 100 ml. Et2O, at -70°, the solution filtered, the precipitate washed twice with cold absolute EtOH, twice with cold absolute Et2O, and twice with cold, dry petr. ether (30-60°), placed, with 75 ml. cold, dry petr. ether, in a 500-ml. flask with a condenser, the solution warmed slightly to initiate decomposition, the reaction then controlled by cooling, the mixture refluxed 0.5 hr., the solvent decanted, the petr. ether washed twice with 50 ml. dilute HCl, the extracts returned to the flask, warmed to remove petr. ether, made slightly alk., and distilled, giving, after drying, 7.4 g. (60%) 3-methyl-5-fluoropyridine (V). To 8.5 g. V and 600 ml. H2O in a flask with a reflux condenser was added 8 g. KMnO4, then more in small amounts as it reacted, to a total of 26 g. in 3 hrs., unreacted V removed by distillation, the residue filtered off hot, washed with hot H2O, the filtrate and washings evaporated to 150 ml., HCl added to complete precipitation, the solid filtered off, the filtrate evaporated to 50 ml., and more HCl added, precipitating more solid, and the combined precipitates (6.4 g.; 77.3%), recrystallized from H2O, giving 5-fluoronicotinic acid (VI), m. 195-7°. VI (3 g.) in 50 ml. SOCl2 was refluxed 12 hrs. and the excess solvent distilled off in vacuo, giving 1.5 ml. of liquid, b18 82°; this (acid chloride) with anhydrous NH3 gave, after 2 recrystallizations from H2O, 1.1 g. 5-fluoronicotinamide (VII), m. 173-5°. From 45 g. 3-bromoquinoline by the method of Graf, et al. (C.A. 28, 269.7) (oxidation and heating), was obtained 16.5 g. 5-bromonicotinic acid (VIII). VIII (14.5 g.), by the method of Meyer and G. (C.A. 23, 837), gave 6.5 g. 5-aminonicotinic acid (IX). IX (6.5 g.) with CH2N2 gave 3 g. Me 5-aminonicotinate (X), m. 135-7°. VII could not be prepared by diazotization of IX or X (the modified Schiemann reaction (R. and H., C.A. 42, 171e)). However, 2.7 g. X in 50 ml. 95% EtOH was treated with 25 ml. of 30% fluosilicic acid, the precipitated salt filtered off and suspended in 50 ml. AcOH, then EtONO passed in, at 32° or lower, until the salt dissolved, the solution cooled in ice, and 75 ml. dry Et2O added to precipitate the diazonium fluosilicate, which, when filtered off, washed once with absolute EtOH and twice with absolute Et2O in a CO2 atm., and dried over P2O5, m. 89° (violent decomposition). The salt suspended in dry PhMe, heated until it decomposed, and the PhMe layer distilled, gave 0.4 g. Me 5-fluoronicotinate (XI), b26 101-2°, m. 46-50°. XI in 50% MeOH with NH3 gave VII, m. 173-5°. Oxidation of 3-fluoroquinoline with KMnO4 or with concentrated HNO3 did not give VI.

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Let`s talk about compounds: 455-70-9

From this literature《N-Oxides of nicotinic acid and its esters》,we know some information about this compound(455-70-9)Application In Synthesis of Methyl 5-fluoro-3-pyridinecarboxylate, but this is not all information, there are many literatures related to this compound(455-70-9).

In general, if the atoms that make up the ring contain heteroatoms, such rings become heterocycles, and organic compounds containing heterocycles are called heterocyclic compounds. An article called N-Oxides of nicotinic acid and its esters, published in 1949, which mentions a compound: 455-70-9, Name is Methyl 5-fluoro-3-pyridinecarboxylate, Molecular C7H6FNO2, Application In Synthesis of Methyl 5-fluoro-3-pyridinecarboxylate.

Nicotinic acid (I) (1 part) in 3 parts glacial AcOH and 3 parts H2O2, heated 3 hrs. on the water bath, gives 70-80% of the N-oxide (II), pale yellow, m. 249° (decomposition); impure II, heated at 100°, decompose spontaneously. II (1 g.) in 20 ml. MeOH, saturated with HCl at 0° and refluxed 2 hrs., gives 0.5 g. of the Me ester, m. 97°; Et ester (III), m. 99.5°. The Et ester of I (2 g.), 10 ml. AcOH, and 30 ml. H2O2, heated 3 hrs. on the water bath, give 1.1 g. III.

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Can You Really Do Chemisty Experiments About 455-70-9

From this literature《A predictive model for additions to N-alkyl pyridiniums》,we know some information about this compound(455-70-9)Application In Synthesis of Methyl 5-fluoro-3-pyridinecarboxylate, but this is not all information, there are many literatures related to this compound(455-70-9).

Application In Synthesis of Methyl 5-fluoro-3-pyridinecarboxylate. The reaction of aromatic heterocyclic molecules with protons is called protonation. Aromatic heterocycles are more basic than benzene due to the participation of heteroatoms. Compound: Methyl 5-fluoro-3-pyridinecarboxylate, is researched, Molecular C7H6FNO2, CAS is 455-70-9, about A predictive model for additions to N-alkyl pyridiniums. Author is Knight, Brian J.; Tolchin, Zachary A.; Smith, Joel M..

Disclosed in this communication is a thorough study on the dearomative addition of organomagnesium nucleophiles to N-alkyl pyridinium electrophiles. The regiochem. outcomes have observable and predictable trends associated with the substituent patterns on the pyridinium electrophile. Often, the substituent effects can be either additive, giving high selectivities, or ablative, giving competing outcomes. Addnl., the nature of the organometallic nucleophilic component was also investigated for its role in the regioselective outcome. The effects of either reactive component are important to both the overall reactivity and site of nucleophilic addition The utility of these observed trends is demonstrated in a concise, dearomative synthesis of a tricyclic compound shown to have insecticidal activity.

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The important role of 455-70-9

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COA of Formula: C7H6FNO2. The mechanism of aromatic electrophilic substitution of aromatic heterocycles is consistent with that of benzene. Compound: Methyl 5-fluoro-3-pyridinecarboxylate, is researched, Molecular C7H6FNO2, CAS is 455-70-9, about Copper-Catalyzed Regio- and Diastereoselective Additions of Boron-Stabilized Carbanions to Heteroarenium Salts: Synthesis of Azaheterocycles Containing Contiguous Stereocenters. Author is Nallagonda, Rajender; Karimov, Rashad R..

Nucleophilic addition of diborylalkyl reagents to N-alkyl or N-acylpyridinium and related heteroarenium salts has been developed as a key step for the synthesis of nonaromatic nitrogen heterocycles that contain contiguous stereogenic centers. Derivatization of the dihydropyridine products for the synthesis of tetrahydropyridines and piperidines have also been described.

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From this literature《Preparation of 5-fluoronicotinic acid and 5-fluoronicotinamide》,we know some information about this compound(455-70-9)Category: dioxole, but this is not all information, there are many literatures related to this compound(455-70-9).

Category: dioxole. 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: Methyl 5-fluoro-3-pyridinecarboxylate, is researched, Molecular C7H6FNO2, CAS is 455-70-9, about Preparation of 5-fluoronicotinic acid and 5-fluoronicotinamide. Author is Hawkins, G. F.; Roe, Arthur.

2-Amino-3-methylpyridine (50 g.) in 240 ml. concentrated H2SO4, cooled to 5°, was slowly treated with a mixture of 35 ml. each of concentrated H2SO4 and concentrated HNO3, with the temperature kept below 10°, and allowed to warm up to 30° overnight. [If the solution was then poured over cracked ice, neutralized, and filtered, the nitro derivative (I) could be obtained, but it was preferred not to isolate I.] To the solution, kept below 40° and stirred, was slowly added 35 ml. concentrated HNO3, approx. 50 ml. of the mixture (A) added to 100 ml. H2O, and heated to 120°. The balance of (A) was added in 50-ml. portions when gas evolution ceased, the mixture was cooled by the addition of 1 kg. ice, and the precipitate filtered off (46 g.); an addnl. 5 g. could be obtained by addition of 10 g. NaNO2 to the filtrate, and another 6 g. was obtainable by neutralizing the filtrate from the NaNO2 treatment. The combined products were dissolved in the min. amount of dilute NaOH, stirred with C, and filtered, giving 51 g. (71.5%) of fairly pure 2-hydroxy-3-methyl-5-nitropyridine (II), greenish yellow, m. 228.5-9.5°, after crystallizations from H2O and decolorization. II was also prepared by adding 15 ml. fuming HNO3 and 20 ml. concentrated H2SO4 to 20 g. 2-hydroxy-3-methylpyridine in 40 ml. concentrated H2SO4 at a temperature below 40°, allowing to warm up to 50° during 2.5 hrs., pouring over cracked ice, and filtering, washing, and drying the precipitate over P2O5, giving 13.5 g. cream-colored II, m. 228.5-9.5°. II (83 g.) and 400 ml. POCl3 were refluxed 6 hrs., the excess POCl3 distilled off, the residue poured over cracked ice, filtered, the filtrate neutralized with NaOH solution, extracted twice with 100-ml. portions of Et2O, the precipitate also dissolved in the Et2O solution, a lower liquid layer removed, and the solution dried over CaO; distillation yielded 81.5 g. (87.6%) 2-chloro-3-methyl-5-nitropyridine (III), m. 47-8°, b18 145.5°. III was also prepared from I by diazotization in concentrated HCl, in 32% yield with II as a by-product. To 24 g. III was added 100 ml. AcOH, 14 g. AcONa, and 5 g. Pd-charcoal catalyst, the mixture reduced with H at 15-25 lb. pressure (even after heating, only 80% of the theoretical H was absorbed), the hot solution filtered, evaporated to dryness, concentrated NaOH added, the mixture heated 30 min., extracted, after cooling, with three 75-g. portions of Et2O, and the extracts dried over NaOH and distilled, giving 9 g. (51%) 3-methyl-5-aminopyridine (IV), m. 57-9°, b21 153°. To 12 g. IV in 50 ml. 42% HBF4 and 75 ml. EtOH at -10° was added EtONO, at a temperature kept below -5°, until no more precipitation occurred, the solution poured into 75 ml. absolute EtOH and 100 ml. Et2O, at -70°, the solution filtered, the precipitate washed twice with cold absolute EtOH, twice with cold absolute Et2O, and twice with cold, dry petr. ether (30-60°), placed, with 75 ml. cold, dry petr. ether, in a 500-ml. flask with a condenser, the solution warmed slightly to initiate decomposition, the reaction then controlled by cooling, the mixture refluxed 0.5 hr., the solvent decanted, the petr. ether washed twice with 50 ml. dilute HCl, the extracts returned to the flask, warmed to remove petr. ether, made slightly alk., and distilled, giving, after drying, 7.4 g. (60%) 3-methyl-5-fluoropyridine (V). To 8.5 g. V and 600 ml. H2O in a flask with a reflux condenser was added 8 g. KMnO4, then more in small amounts as it reacted, to a total of 26 g. in 3 hrs., unreacted V removed by distillation, the residue filtered off hot, washed with hot H2O, the filtrate and washings evaporated to 150 ml., HCl added to complete precipitation, the solid filtered off, the filtrate evaporated to 50 ml., and more HCl added, precipitating more solid, and the combined precipitates (6.4 g.; 77.3%), recrystallized from H2O, giving 5-fluoronicotinic acid (VI), m. 195-7°. VI (3 g.) in 50 ml. SOCl2 was refluxed 12 hrs. and the excess solvent distilled off in vacuo, giving 1.5 ml. of liquid, b18 82°; this (acid chloride) with anhydrous NH3 gave, after 2 recrystallizations from H2O, 1.1 g. 5-fluoronicotinamide (VII), m. 173-5°. From 45 g. 3-bromoquinoline by the method of Graf, et al. (C.A. 28, 269.7) (oxidation and heating), was obtained 16.5 g. 5-bromonicotinic acid (VIII). VIII (14.5 g.), by the method of Meyer and G. (C.A. 23, 837), gave 6.5 g. 5-aminonicotinic acid (IX). IX (6.5 g.) with CH2N2 gave 3 g. Me 5-aminonicotinate (X), m. 135-7°. VII could not be prepared by diazotization of IX or X (the modified Schiemann reaction (R. and H., C.A. 42, 171e)). However, 2.7 g. X in 50 ml. 95% EtOH was treated with 25 ml. of 30% fluosilicic acid, the precipitated salt filtered off and suspended in 50 ml. AcOH, then EtONO passed in, at 32° or lower, until the salt dissolved, the solution cooled in ice, and 75 ml. dry Et2O added to precipitate the diazonium fluosilicate, which, when filtered off, washed once with absolute EtOH and twice with absolute Et2O in a CO2 atm., and dried over P2O5, m. 89° (violent decomposition). The salt suspended in dry PhMe, heated until it decomposed, and the PhMe layer distilled, gave 0.4 g. Me 5-fluoronicotinate (XI), b26 101-2°, m. 46-50°. XI in 50% MeOH with NH3 gave VII, m. 173-5°. Oxidation of 3-fluoroquinoline with KMnO4 or with concentrated HNO3 did not give VI.

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