Sources of common compounds: 610-09-3

In some applications, this compound(610-09-3)Category: benzisoxazole is unique.If you want to know more details about this compound, you can contact with the author or consult more relevant literature.

Category: benzisoxazole. So far, in addition to halogen atoms, other non-metallic atoms can become part of the aromatic heterocycle, and the target ring system is still aromatic. Compound: cis-Cyclohexane-1,2-dicarboxylic acid, is researched, Molecular C8H12O4, CAS is 610-09-3, about Discovery of novel chemoeffectors and rational design of Escherichia coli chemoreceptor specificity.

Bacterial chemoreceptors mediate chemotactic responses to diverse stimuli. Here, by using an integrated in silico, in vitro, and in vivo approach, we screened a large compound library and found eight novel chemoeffectors for the Escherichia coli chemoreceptor Tar. Six of the eight new Tar binding compounds induce attractant responses, and two of them function as antagonists that can bind Tar without inducing downstream signaling. Comparison between the antagonist and attractant binding patterns suggests that the key interactions for chemotaxis signaling are mediated by the hydrogen bonds formed between a donor group in the attractant and the main-chain carbonyls (Y149 and/or Q152) on the α4 helix of Tar. This mol. insight for signaling is verified by converting an antagonist to an attractant when introducing an N-H group into the antagonist to restore the hydrogen bond. Similar signal triggering effect by an O-H group is also confirmed. Our study suggests that the Tar chemoeffector binding pocket may be separated into two functional regions: region I mainly contributes to binding and region II contributes to both binding and signaling. This scenario of binding and signaling suggests that Tar may be rationally designed to respond to a non-native ligand by altering key residues in region I to strengthen binding with the novel ligand while maintaining the key interactions in region II for signaling. Following this strategy, we have successfully redesigned Tar to respond to L-arginine, a basic amino acid that does not have chemotactic effect for WT Tar, by two site-specific mutations (R69’E and R73’E).

In some applications, this compound(610-09-3)Category: benzisoxazole is unique.If you want to know more details about this compound, you can contact with the author or consult more relevant literature.

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Sources of common compounds: 610-09-3

In some applications, this compound(610-09-3)COA of Formula: C8H12O4 is unique.If you want to know more details about this compound, you can contact with the author or consult more relevant literature.

The three-dimensional configuration of the ester heterocycle is basically the same as that of the carbocycle. Compound: cis-Cyclohexane-1,2-dicarboxylic acid(SMILESS: O=C([C@H]1[C@@H](C(O)=O)CCCC1)O,cas:610-09-3) is researched.HPLC of Formula: 652148-90-8. The article 《Photoreduction of carbon dioxide to its radical anion by nickel cluster [Ni3(μ3-I)2(dppm)3]: formation of two carbon-carbon bonds via addition of carbon dioxide radical anion to cyclohexene》 in relation to this compound, is published in Journal of the American Chemical Society. Let’s take a look at the latest research on this compound (cas:610-09-3).

The trinuclear cluster Ni3(μ3-I)2(dppm)3, (1) [dppm = bis(diphenylphosphino)methane] is formed by conproportionation of Ni(COD)2 and NiI2 in the presence of dppm. Cluster 1 and its singly oxidized radical cation (2) have been characterized spectroscopically and by x-ray diffraction. Cluster 2 exhibits a slight Jahn-Teller distortion of its triangular nickel framework. Irradiation of 1 in the presence of CO2 results in photochem. electron transfer to produce CO2•- and 2. The CO2•- can be trapped by H-atom abstraction from toluene to produce formate ion or with cyclohexene to form cis- and trans-1,2-cyclohexanedicarboxylic acid. The radical anion disproportionation products, carbonate and CO, are observed in the absence of a trapping reagent for CO2•-.

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The important role of 610-09-3

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The three-dimensional configuration of the ester heterocycle is basically the same as that of the carbocycle. Compound: cis-Cyclohexane-1,2-dicarboxylic acid(SMILESS: O=C([C@H]1[C@@H](C(O)=O)CCCC1)O,cas:610-09-3) is researched.Related Products of 39901-94-5. The article 《Reduction mechanism of cyclohexene-1,2-dicarboxylic acid》 in relation to this compound, is published in Denki Kagaku oyobi Kogyo Butsuri Kagaku. Let’s take a look at the latest research on this compound (cas:610-09-3).

Reduction mechanism of cyclohexene-1,2-dicarboxylic acid (I) was polarog. examined at pH 0-6. The first of the 3 waves that appeared was due to the adsorption of the product in strongly acid media. The 2nd wave was interpreted as due to a CEC (chem.-electrode-chem.) process involving preprotonation of the acid. The 3rd wave that appeared only in weakly acid media involved a CEC mechanism by which the free acid was reduced. The rate constant of the protonation of the monoanion from I was calculated Controlled-potential electrolysis produced a mixture of trans- and cis-cyclohexanedicarboxylic acid in high yield at pH 0-6. The stereoisomeric ratio of the products was influenced by pH; this was due to the difference of the stability of the reaction intermediates.

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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: cis-Cyclohexane-1,2-dicarboxylic acid( cas:610-09-3 ) is researched.Related Products of 610-09-3.Salakhov, M. S.; Israfilov, A. I.; Gulieva, R. S.; Mamedov, S. A. published the article 《Analysis of the stereochemistry of cyclic dicarboxylic acids by potentiometric titration. IX. Acidic ionization of stereoisomeric cyclic 1,2-dicarboxylic acids in aqueous methanol mixtures》 about this compound( cas:610-09-3 ) in Voprosy Stereokhimii. Keywords: acidity cyclic diacid stereoisomer. Let’s learn more about this compound (cas:610-09-3).

The ionization constants of I-V were determined at 25° for potentiometric titration The cis acids were weaker than the trans acids, and the saturated acids were weaker than the unsaturated ones. The distance between ionizing carboxyls in cis-trans pairs, as calculated by the Ingold method, was apparently the same.

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The reaction of an aromatic heterocycle with a proton is called a protonation. One of articles about this theory is 《Stereochemistry of cyclic compounds. 1,3-Cyclopentenedione in Diels-Alder reaction》. Authors are Kucherov, V. F.; Ivanova, L. I..The article about the compound:cis-Cyclohexane-1,2-dicarboxylic acidcas:610-09-3,SMILESS:O=C([C@H]1[C@@H](C(O)=O)CCCC1)O).COA of Formula: C8H12O4. Through the article, more information about this compound (cas:610-09-3) is conveyed.

Oxidation of 1,3-cyclopentenediol with CrO3 in AcOH with ice cooling gave 26% 1,3-cyclopentenedione (I), b1 60°, n20D 1.5045, m. 35-6°, after cooling. The dione condenses readily with butadiene in C6H6 (pyrogallol added) in 2 weeks at room temperature to yield cis-Δ5-hexahydroindene-1,3-dione, m. 157.5-8.5°; hydrogenation over Pd gave 1,3-hydrindandione, m. 86-6.5°, which with Br2-NaOH gave cis-1,2-cyclohexanedicarboxylic acid, m. 186.5-7.5°. I condensed with isoprene in C6H6 to the adduct, 5-methyl-Δ5-hexahydroindene-1,3-dione, m. 84.5-5.5°. Cyclopentadiene gave the adduct, C10H10O2, m. 178-8.5°, which hydrogenated over Pd to endomethylenehydrindan-1,3-dione, m. 166-6.5°. I and 1-vinylcyclohexene gave the adduct, 4,5-tetramethylene-Δ5-hexahydroindene-1,3-dione, m. 120-1°. I and 6-methoxy-1-vinyl-Δ3,4-dihydronaphthalene similarly gave in 1 day at room temperature II, m. 206.5-7.5°.

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Related Products of 610-09-3. Aromatic compounds can be divided into two categories: single heterocycles and fused heterocycles. Compound: cis-Cyclohexane-1,2-dicarboxylic acid, is researched, Molecular C8H12O4, CAS is 610-09-3, about Zinc(II) and cadmium(II) complexes with mixed 1,3-di(1H-imidazol-4-yl)benzene and cyclohexanedicarboxylate ligands: Synthesis, structure and property. Author is Chen, Zhi-Hao; Zhao, Yue; Wang, Peng; Chen, Shui-Sheng; Sun, Wei-Yin.

Eight new coordination polymers Zn(L)(cis-1,2-CHDA)| (1), Zn(L)(trans-1,3-CHDA)|·2.5H2O (2), Zn(L)(cis-1,3-CHDA)|·H2O (3), Cd(L)(cis-1,2-CHDA)|·3H2O (4), Cd2(L)2(cis-1,2-CHDA)2|·3H2O (5), Cd(L)(cis-1,3-CHDA)|·H2O (6), Cd(L)(cis-1, 4-CHDA)|·5H2O (7) and Cd(L)(cis-1,4-CHDA)| (8) were synthesized by reactions of corresponding metal salt with 1,3-di(1H-imidazol-4-yl)benzene (L) and different carboxylic acids such as 1,2-cyclohexanedicarboxylic acid (1,2-H2CHDA), 1,3-cyclohexanedicarboxylic acid (1,3-H2CHDA) and 1,4-cyclohexanedicarboxylic acid (1,4-H2CHDA), resp. The results of crystal structure anal. revealed that 4, 7 and 8 are chains, 1, 3, 5 and 6 are (3)-connected 2D networks with Point (Schlaefli) symbol of (63), while 2 is a (3,3)-connected 2D network with Point (Schlaefli) symbol of (44,62). Thermal stability and photoluminescence of the complexes were investigated. Furthermore, DFT calculations were carried out on 2-5, and 7 and 8 to discuss the temperature dependent reaction of the complexes.

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In some applications, this compound(610-09-3)COA of Formula: C8H12O4 is unique.If you want to know more details about this compound, you can contact with the author or consult more relevant literature.

COA of Formula: C8H12O4. So far, in addition to halogen atoms, other non-metallic atoms can become part of the aromatic heterocycle, and the target ring system is still aromatic. Compound: cis-Cyclohexane-1,2-dicarboxylic acid, is researched, Molecular C8H12O4, CAS is 610-09-3, about Reductive metabolism and its role in the disposition of the hydroxamic angiotensin-converting enzyme inhibitor idrapril calcium in rat.

The metabolism of 14C-idrapril calcium, the prototype of a new class of angiotensin-converting enzyme inhibitors, was studied in rat after a single i.v. administration. Plasma, urine, feces, and bile were assayed for total and HPLC-fractionated radioactivity. Only one major metabolite (M1, 2-sarcosinamide-cis-1,2-cyclohexanedicarboxylamide) was observed, along with idrapril, in plasma. Three metabolites (M1, M2, cis-1,2-cyclohexanedicarboxylic acid, and M3, and glucuronate derivative of M1) were present in 0-8-h urine, unchanged idrapril being the most abundant product. In bile, two metabolites (M1, M3), but not the parent compound, were found. In conclusion i.v. idrapril undergoes hepatic reduction to M1 and hydrolysis to M2. M1 can be glucuronated to M3 and both are partially excreted in the bile and further processed in the gut to reabsorbable radioactive species.

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Benzisoxazole – Wikipedia,
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Archives for Chemistry Experiments of 610-09-3

In some applications, this compound(610-09-3)Quality Control of cis-Cyclohexane-1,2-dicarboxylic acid is unique.If you want to know more details about this compound, you can contact with the author or consult more relevant literature.

The reaction of an aromatic heterocycle with a proton is called a protonation. One of articles about this theory is 《Configuration determinations in the terpene series. II. The optically active forms of β-isopropyladipic acid and their relation to the optically active limonenes》. Authors are Braun, Julius V.; Werner, Georg.The article about the compound:cis-Cyclohexane-1,2-dicarboxylic acidcas:610-09-3,SMILESS:O=C([C@H]1[C@@H](C(O)=O)CCCC1)O).Quality Control of cis-Cyclohexane-1,2-dicarboxylic acid. Through the article, more information about this compound (cas:610-09-3) is conveyed.

cf. C. A. 20, 2990. It was shown in the 1st paper that the configuration of the C atom carrying the Me group in the natural d-rotatory citronellol, the d-rotatory citronellol, pulegone, the d-rotatory menthone and l-rotatory menthol is the same and corresponds to that of the d-rotatory pyrotartaric (I) and of the d-rotatory β-methyladipic acid (II) when the formulas of these compounds are so written that the valence to the O-containing part of the mol. (or the nearer CO2H group in the case of II) of the asym. C atom corresponds to that through which in I the CO2H group is held. This was shown by establishing the genetic relationship between I and the II which is obtained by the oxidative degradation of some of these compounds It is probable, although not definitely proved, that this configuration corresponds to that of d-tartaric acid and the prefix d-is accordingly used for the Me-carrying C atom in this series of compounds These results gave rise to the desire to determine whether there is a similar simple relationship as regards another asym. C atom often occurring in this class of compounds, viz., the C atom, usually in the 4-, more rarely in the 3-position to the CHMe group, canying the iso-Pr or isopropenyl residue, and which either alone (as in limonene, carvone, diosphenul, silvestrene) or together with the CHMe group (as in menthone) conditions the optical activity. It is known that in some cases this C atom call be oxidized out as isopropylsuccinic acid and in others as β-isopropyladipic acid (III). Here, however, the problem was much more difficult, for there were in general no exact data in the literature oil the optical activity of the 2 expected iso-Pr-containing di-CO2H acids, on the d- and l-forms prepared artificially by resolution of the dl-forms and, naturally, on the genetic relationship between the tartaric acids and there acids; finally, the inactive III is extraordinarily difficultly available. The 1st problem attacked, therefore, was that of preparing III in sufficient quantities. A repetition of Blanc’s work convinced v. B. and W. that this method would not be practical but the fact that p-methylcyclohexanol readily yields II on oxidation suggested the use of p-isopiopylyleyclohexanol (IV) as the starting material. p-iso-PrC6H4OH was readily hydrogenated with Ni at 150° to IV and this, after some experimenting to determine the proper conditions, was converted with satisfactory yield into III which by means of strychnine was resolved into the d-rotatory form with maximum rotation and the l-rotatory form with not quite a constant final rotation. To oxidize the optically active 4-C atom out of limonene the 8,9-double bond naturally had first to be eliminated. This, it was found, could not be effected by adding HCl, for extensive racemization. occurred in the process and by varying the length of the HCl treatment hydrochlorolimonenes with widely different rotations could be obtained. On the other hand, the dihydrolimonene (V) obtained by hydrogenation of pure d-rotatory limonene with H2 and Pt gave an optically active ketoaldehyde (VI) and keto acid (VII) and the latter finally yielded a III with the same rotation as that obtained by resolution of the dl-form. On the very probable assumption that, like-the d-rotatory II, it belongs to the d-series, the d-rotatory hydrocarbon would then be represented by the symbol d(+)-limonene. dl-III, obtained in 50% yield from IV (in not more than 10 g. portions) shaken 8-10 hrs. below 10° with 3 parts KMnO4 and 0.5 part KOH in not quite 100 parts H2O, b12 215-8°, m. 75°; di-Et ester, b12 145-50°, d420 0.9776. Strychnine salt of (+)-acid, m. 182°; Na salt, [α]D 5.4°; free acid, m. 66°. (-)-Acid, m. around 60° ; Na salt, [α]D -4.1°. Chloride of the (+)-acid, prepared with cold SOCl2, b16 145-6°, d420 1.1023, [α]D20 1.134°; amide, m. 169.5°, [α]D20 9.5° (2.22% aqueous solution); Et ester, prepared with HCl and alc., b13 145-50°, d420 0.9776, [α]D20 -1.534° (no solvent). With HCl very carefully dried with H2SO4 and P2O5 v. B. and W. obtained, after saturating limonene in CS2 for 6 hrs., an analytically pure HCl addition product, b16 100-1°, with [α]D 75.8°; after 8 hrs. [α]D was 54°, after 24 hrs. treatment with a current of HCl, standing another 2 days under HCl pressure and again treating 5 hrs. with HCl it was 33°. The V, [α]678 118°, was obtained by Vavon’s method (Pd, either on charcoal or colloidal in gum arabic, instead of Pt gave a mixture of unchanged limonene and the di- and tetrahydro derivatives). VI, from V and 3% O2 in 4 parts AcOH (yield, more than 60%), b12 130-2°, d420 0.9393, [α]D20 -6.97°; semicarbazone, m. 182-3°. VII, from VI and cold aqueous KMnO4 (somewhat more than 1 atom O; yield, 75%), thick yellowish oil, b12 188°, dD20 1.020, [α]D20 2.5°, gives (+)-III with ice-cold NaOBr (6 atoms Br).

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Reference:
Benzisoxazole – Wikipedia,
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Epoxy compounds usually have stronger nucleophilic ability, because the alkyl group on the oxygen atom makes the bond angle smaller, which makes the lone pair of electrons react more dissimilarly with the electron-deficient system. Compound: cis-Cyclohexane-1,2-dicarboxylic acid, is researched, Molecular C8H12O4, CAS is 610-09-3, about Crystal structure of cis-1,2-cyclohexanedicarboxylic acid.Related Products of 610-09-3.

C8H12O4, crystallizes in the triclinic system, space group P1 , with a = 6.93, b = 10.95, c = 6.38 Å, α = 108°3′, β = 114°51′, γ = 90°16′, and Z = 2. The structure has been solved by joint application of the symbolic addition procedure and the method based on the maximum probability described by Allegra and Valle, which maximizes the II(s1, s2, s3,…) function. The structure has been refined to an R factor of 0.056 for 1505 independent reflections measured by counter techniques (Cu Kα). One of the two carboxyl groups is in the axial, the other in the equatorial position relative to the cyclohexane ring. The observed conformation of this mol. is compared with that recently given for the trans isomer.

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Let`s talk about compounds: 610-09-3

In some applications, this compound(610-09-3)HPLC of Formula: 610-09-3 is unique.If you want to know more details about this compound, you can contact with the author or consult more relevant literature.

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, Hyomen Gijutsu called Evaluation of the anticorrosivity by low-energy photoelectron emission of the magnetic metal particles for magnetic recording media, Author is Watanabe, Haruo; Sato, Fumihiko; Imai, Jun; Mori, Shigeyuki, which mentions a compound: 610-09-3, SMILESS is O=C([C@H]1[C@@H](C(O)=O)CCCC1)O, Molecular C8H12O4, HPLC of Formula: 610-09-3.

The correlation between the anticorrosivity and the intensity of the low-energy photoelectron emission of Fe particles for magnetic recording was studied. Particles with higher anticorrosivity showed lower emission intensity. Particles treated with cis-1,2-cyclohexyldicarboxylic acid showed a higher emission threshold. This higher threshold was explained by the formation of a surface potential barrier on the outer layer of γ-Fe2O3 by anionic species.

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Reference:
Benzisoxazole – Wikipedia,
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