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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: 56621-48-8, is researched, SMILESS is OC1=CC=C(N2CCNCC2)C=C1, Molecular C10H14N2OJournal, Article, Bioorganic & Medicinal Chemistry Letters called Potent, selective, and orally active adenosine A2A receptor antagonists: Arylpiperazine derivatives of pyrazolo[4,3-e]-1,2,4-triazolo[1,5-c]pyrimidines, Author is Neustadt, Bernard R.; Hao, Jinsong; Lindo, Neil; Greenlee, William J.; Stamford, Andrew W.; Tulshian, Deen; Ongini, Ennio; Hunter, John; Monopoli, Angela; Bertorelli, Rosalia; Foster, Carolyn; Arik, Leyla; Lachowicz, Jean; Ng, Kwokei; Feng, Kung-I., the main research direction is pyrazolo triazolo pyrimidine arylpiperazine preparation adenosine receptor antagonist SAR.COA of Formula: C10H14N2O.

Antagonism of the adenosine A2A receptor offers great promise in the treatment of Parkinson’s disease. Employing the known pyrazolo[4,3-e]-1,2,4-triazolo[1,5-c]pyrimidine A2A antagonist SCH 58261 as a starting point, we identified the potent and selective (vs. A1) antagonist 11h (I), orally active in the rat haloperidol-induced catalepsy model. We further optimized this lead to the methoxyethoxyethyl ether 12a (SCH 420814), which shows broad selectivity, good pharmacokinetic properties, and excellent in vivo activity.

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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: 4-(Piperazin-1-yl)phenol, is researched, Molecular C10H14N2O, CAS is 56621-48-8, about Acaricidal properties of piperazine and its derivatives against house-dust and stored-food mites.COA of Formula: C10H14N2O.

Piperazine derivatives possess pharmacol. properties, yet the acaricidal activity of these compounds has not been investigated. This study was conducted to evaluate the color alteration and acaricidal activity of piperazine derivatives against Dermatophagoides spp. and Tyrophagus putrescentiae using filter paper and fumigant methods. In a fumigant bioassay, 1-phenylpiperazine (7.83 μg/cm2) against D. farinae was found to be 4.7-fold more toxic than DEET (36.84 μg/cm2), followed by benzyl benzoate (9.72 μg/cm2), piperazine (11.41 μg/cm2), 1-ethoxycarbonylpiperazine (20.14 μg/cm2), and 1-(2-methoxyphenyl)piperazine (22.14 μg/cm2). In a filter paper bioassay, 1-(2-methoxyphenyl)piperazine (3.65 μg/cm2) was 5.7-fold more toxic than DEET (20.64 μg/cm2), followed by 1-ethoxycarbonylpiperazine (4.02 μg/cm2), 1-phenylpiperazine (4.75 μg/cm2), benzyl benzoate (7.83 μg/cm2), and piperazine (10.59 μg/cm2). Similar results have been exhibited with piperazine derivatives against D. pteronyssinus. However, no activity against T. putrescentiae was observed for piperazine derivatives, except for piperazine. These results indicate that piperazine derivatives may be suitable as vapor-phase acaricide fumigants owing to their high volatility, acaricidal activity and safety. 1-Phenylpiperazine was found to be an excellent mite indicator based on the color change it induced. Taken together, these findings indicate that piperazine derivatives may be used to replace existing problematical acaricides owing to their activity and ability to act as a mite indicator.

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There is still a lot of research devoted to this compound(SMILES:OC1=CC=C(N2CCNCC2)C=C1)Name: 4-(Piperazin-1-yl)phenol, and with the development of science, more effects of this compound(56621-48-8) can be discovered.

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: 4-(Piperazin-1-yl)phenol, is researched, Molecular C10H14N2O, CAS is 56621-48-8, about Molecular Mechanism for Isoform-Selective Inhibition of Acyl Protein Thioesterases 1 and 2 (APT1 and APT2).Name: 4-(Piperazin-1-yl)phenol.

Post-translational S-palmitoylation directs the trafficking and membrane localization of hundreds of cellular proteins, often involving a coordinated palmitoylation cycle that requires both protein acyltransferases (PATs) and acylprotein thioesterases (APTs) to actively redistribute S-palmitoylated proteins toward different cellular membrane compartments. This process is necessary for the trafficking and oncogenic signaling of S-palmitoylated Ras isoforms, and potentially other peripheral membrane proteins. Depalmitoylating enzymes APT1 and APT2 are sep. conserved in all vertebrates, suggesting unique functional roles for each enzyme. The recent discovery of APT isoform-selective inhibitors ML348 and ML349 has opened new possibilities to probe the function of each enzyme, yet it remains unclear how each inhibitor achieves orthogonal inhibition. Here, the authors report the high-resolution structure of human APT2 in complex with ML349 (1.64 Å), as well as the complementary structure of human APT1 bound to ML348 (1.55 Å). Although the overall peptide backbone structures are nearly identical, each inhibitor adopted a distinct conformation within each active site. In APT1, ML348 was positioned above the catalytic triad, but in APT2, the sulfonyl group of ML349 formed H-bonds with active site resident water mols. to indirectly engage the catalytic triad and oxyanion hole. Reciprocal mutagenesis and activity profiling revealed several differing residues surrounding the active site that served as critical gatekeepers for isoform accessibility and dynamics. Structural and biochem. anal. suggested that the inhibitors occupy a putative acyl-binding region, establishing the mechanism for isoform-specific inhibition, hydrolysis of acyl substrates, and structural orthogonality important for future probe development.

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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, Russian Journal of Organic Chemistry called N-Substituted S-Alkyl Carbamothioates in the Synthesis of Nitrogen-containing Functional Derivatives of the Adamantane Series, Author is Klimochkin, Yu. N.; Ivleva, E. A., which mentions a compound: 56621-48-8, SMILESS is OC1=CC=C(N2CCNCC2)C=C1, Molecular C10H14N2O, Formula: C10H14N2O.

A series of new asym. ureas, urethanes, and other derivatives of the framework structure I [R = OCH2C2OH, (2-methylquinolin-4-yl)aminyl, 4-methylpiperazin-1-yl.HCl, etc.] have been synthesized by the reactions of adamantan-1-yl isocyanate generated in situ by the thermolysis of S-Et (adamantan-1-yl)carbamothioate with nitrogen-containing nucleophiles and alcs.

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Synthetic Route of C10H14N2O. The mechanism of aromatic electrophilic substitution of aromatic heterocycles is consistent with that of benzene. Compound: 4-(Piperazin-1-yl)phenol, is researched, Molecular C10H14N2O, CAS is 56621-48-8, about Biotransformation of LASSBio-579 and pharmacological evaluation of p-hydroxylated metabolite a N-phenylpiperazine antipsychotic lead compound. Author is Gomes, Tatiana F.; Pompeu, Thais E. T.; Rodrigues, Daniel A.; Noel, Francois; Menegatti, Ricardo; Andrade, Carolina H.; Sabino, Jose R.; Gil, Eric S.; Dalla Costa, Teresa; Betti, Andresa H.; Antonio, Camila B.; Rates, Stela M. K.; Fraga, Carlos A. M.; Barreiro, Eliezer J.; de Oliveira, Valeria.

Using a combination of docking and mol. dynamics simulations, we predicted that p-hydroxylation by CYP1A2 would be the main metabolic pathway for the 1-[1-(4-chlorophenyl)-1H-4pyrazolylmethyl] phenylhexahydropiperazine, LASSBio-579. As the result of a screening process with strains of filamentous fungi, Cunninghamella echinulata ATCC 9244 was chosen to scale up the preparation of the p-hydroxylated metabolite. About 30 min after i.p. administration of LASSBio-579 to rats was identified as the p-hydroxylated metabolite, confirming our in silico previsions. Chem. synthesis of the metabolite was performed and allowed its pharmacol. evaluation in binding assays revealing its high affinity for D2 and D4 receptors, indicating that this metabolite should participate to the antipsychotic effect of LASSBio-579 in vivo. Furthermore, we report here that both LASSBio-579 and its p-hydroxylated metabolite have a much lower affinity than clozapine for two receptors involved in adverse reactions. Voltammetric assays were useful to understand the redox profile of LASSBio-579.

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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 SuFEx-enabled, chemoselective synthesis of triflates, triflamides and triflimidates, published in 2021, which mentions a compound: 56621-48-8, mainly applied to triflate triflamide triflimidate synthesis click reaction, Application of 56621-48-8.

Sulfur(VI) Fluoride Exchange (SuFEx) chem. has emerged as a next-generation click reaction, designed to assemble functional mols. quickly and modularly. Here, we report the ex situ generation of trifluoromethanesulfonyl fluoride (CF3SO2F) gas in a two chamber system, and its use as a new SuFEx handle to efficiently synthesize triflates and triflamides. This broadly tolerated protocol lends itself to peptide modification or to telescoping into coupling reactions. Moreover, redesigning the SVI-F connector with a S=O → S=NR replacement, furnished the analogous triflimidoyl fluorides as SuFEx electrophiles, which were engaged in the synthesis of rarely reported triflimidate esters. Notably, experiments showed H2O to be the key towards achieving chemoselective trifluoromethanesulfonation of phenols vs. amine groups, a phenomenon best explained-using ab initio metadynamics simulations-by a hydrogen bonded termol. transition state for the CF3SO2F triflylation of amines.

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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: 4-(Piperazin-1-yl)phenol( cas:56621-48-8 ) is researched.Computed Properties of C10H14N2O.Nematollahi, Davood; Momeni, Shima; Khazalpour, Sadegh published the article 《Different strategies in electrochemical synthesis of new mono and di-substituted hydroquinone and benzoquinone》 about this compound( cas:56621-48-8 ) in Electrochimica Acta. Keywords: strategy electrochem synthesis mono di hydroquinone benzoquinone derivative. Let’s learn more about this compound (cas:56621-48-8).

Electrochem. syntheses of 2-indolyl-5-arylsulfonyl-p-benzoquinone derivatives were carried out in two successive oxidation steps. The 1st involves the oxidation of hydroquinone, 4-(piperazin-1-yl)-phenol and 1-(4-(4-hydroxyphenyl)-piperazin-1-yl) ethanone in the presence of arylsulfinic acids as nucleophiles. The authors’ voltammetric data indicate that electrochem. generated p-benzoquinone participates in Michael addition reaction with arylsulfinic acids leading to the 2-(arylsulfonyl) benzene-1,4-diols. The 2nd consists of the oxidation of 2-(arylsulfonyl) benzene-1,4-diols in the presence of 1,2-dimethylindole and the formation of 2-indolyl-5-arylsulfonyl-p-benzoquinone derivatives as the final products. A plausible mechanism for the synthesis of 2-indolyl-5-arylsulfonyl-p-benzoquinone derivatives is also presented.

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Formula: C10H14N2O. 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: 4-(Piperazin-1-yl)phenol, is researched, Molecular C10H14N2O, CAS is 56621-48-8, about Electrochemical oxidation of 4-(piperazin-1-yl)phenol in the presence of aryl sulfinic acids.

Electrochem. oxidation of 4-(piperazin-1-yl)phenol was studied in the presence of aryl sulfinic acids as nucleophiles in EtOH/H2O mixture (10/90) using cyclic voltammetry and controlled-potential coulometry methods. The electrochem. generated p-quinone-imine participates in Michael type addition reaction with aryl sulfinic acids and via an EC mechanism converts to the new 2-(phenylsulfonyl)-4-(piperazin-1-yl)phenol derivatives The present work led to the development of a facile and environmentally friendly electrochem. method for the synthesis of some new 2-(phenylsulfonyl)-4-(piperazin-1-yl)phenol derivatives under green conditions.

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The chemical properties of alicyclic heterocycles are similar to those of the corresponding chain compounds. Compound: 4-(Piperazin-1-yl)phenol, is researched, Molecular C10H14N2O, CAS is 56621-48-8, about gem-Bisphosphonate-Ended Group Dendrimers: Design and Gadolinium Complexing Properties, the main research direction is gem bisphosphonate terminated dendrimer gadolinium complex magnetic property; piperazino gem bisphosphonate functionalized gadolinium complex crystal structure.Safety of 4-(Piperazin-1-yl)phenol.

The synthesis of the first gem-bisphosphonate-ended group dendrimers is described using nucleophilic substitution of terminal P(S)Cl2 units of phosphorus dendrimers of generation 1 to 3 with protected aminophenols followed by deprotection of amino groups and Michael addition with vinylidene tetraisopropyl bisphosphonate. These dendrimers were found to act as chelating agents towards Gd ions. Contrary to the phosphonic acids that can introduce bridges between Gd ions, these synthons act as unique chelating agents toward the Gd ions. Furthermore, it appears that the number of Gd ions introduced in the isolated units is equal to the number of gem-bisphosphonate pairs. Eventually, the magnetic measurements demonstrate clearly that the Gd ions are not coordinated to these pairs as isolated ions but that at least some of these ions are bridged through oxygen atoms that are not P=O functions, as shown by the structural determination given in the paper. Studies concerning properties of these Gd dendrimers complexes are under active study. (© Wiley-VCH Verlag GmbH & Co. KGaA, 69451 Weinheim, Germany, 2009).

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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: 4-(Piperazin-1-yl)phenol, is researched, Molecular C10H14N2O, CAS is 56621-48-8, about Searching for multi-target antipsychotics: Discovery of orally active heterocyclic N-phenylpiperazine ligands of D2-like and 5-HT1A receptors.Category: ethers-buliding-blocks.

The authors described herein the design, synthesis, and pharmacol. evaluation of N-phenylpiperazine heterocyclic derivatives as multi-target compounds potentially useful for the treatment of schizophrenia. The isosteric replacement of the heterocyclic ring at the biaryl motif generating pyrazole, 1,2,3-triazole, and 2-methylimidazole[1,2-a]pyridine derivatives resulted in 21 analogs with different substitutions at the para-biaryl and para-phenylpiperazine positions. Among the compounds prepared, 4 (LASSBio-579) and 10 (LASSBio-664) exhibited an adequate binding profile and a potential for schizophrenia pos. symptoms treatment without cataleptogenic effects. Structural features of this mol. scaffold are discussed regarding binding affinity and selectivity for D2-like, 5-HT1A, and 5-HT2A receptors.

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