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4-(4-methoxybenzyl)-2-piperazinone is a chemical with a specific purpose. Lookchem provides you with multiple data and supplier information of this chemical.

1578249-63-4

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1578249-63-4 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 1578249-63-4 includes 10 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 7 digits, 1,5,7,8,2,4 and 9 respectively; the second part has 2 digits, 6 and 3 respectively.
Calculate Digit Verification of CAS Registry Number 1578249-63:
(9*1)+(8*5)+(7*7)+(6*8)+(5*2)+(4*4)+(3*9)+(2*6)+(1*3)=214
214 % 10 = 4
So 1578249-63-4 is a valid CAS Registry Number.

1578249-63-4Downstream Products

1578249-63-4Relevant academic research and scientific papers

BCL-2 INHIBITOR

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Paragraph 0691-0693, (2021/10/22)

Disclosed herein is a compound of Formula (I) for inhibiting both Bcl-2 wild type and mutated Bcl-2, in particular, Bcl-2 G101V and D103Y, and a method of using the compound disclosed herein for treating dysregulated apoptotic diseases.

A systematic exploration of the effects of flexibility and basicity on sigma (σ) receptor binding in a series of substituted diamines

Conroy, Trent,Manohar, Madhura,Gong, Yu,Wilkinson, Shane M.,Webster, Michael,Lieberman, Brian P.,Banister, Samuel D.,Reekie, Tristan A.,Mach, Robert H.,Rendina, Louis M.,Kassiou, Michael

, p. 9388 - 9405 (2016/10/13)

The sigma-1 receptor (S1R) has attracted a great deal of attention as a prospective drug target due to its involvement in numerous neurological disorders and, more recently, for its therapeutic potential in neuropathic pain. As there was no crystal structure of this membrane-bound protein reported until 2016, ligand generation was driven by pharmacophore refinements to the general model suggested by Glennon and co-workers. The generalised S1R pharmacophore comprises a central region where a basic amino group is preferred, flanked by two hydrophobic groups. Guided by this pharmacophore, S1R ligands containing piperazines, piperazinones, and ethylenediamines have been developed. In the current work, we systematically deconstructed the piperazine core of a prototypic piperazine S1R ligand (vide infra) developed in our laboratories. Although we did not improve the affinity at the S1R compared to the lead, we identified several features important for affinity and selectivity. These included at least one basic nitrogen atom, conformational flexibility and, for S1R, a secondary or tertiary amine group proximal to the anisole. Furthermore, S2R selectivity can be tailored with functional group modifications of the N-atom proximal to the anisole.

Enantioselective synthesis of α-secondary and α-tertiary piperazin-2- Ones and piperazines by catalytic asymmetric allylic alkylation

Korch, Katerina M.,Eidamshaus, Christian,Behenna, Douglas C.,Stoltz, Brian M.,Nam, Sangkil,Horne, David

supporting information, p. 179 - 183 (2015/02/05)

The asymmetric palladium-catalyzed decarboxylative allylic alkylation of differentially N-protected piperazin-2- ones allows the synthesis of a variety of highly enantioenriched tertiary piperazine-2-ones. Deprotection and reduction affords the corresponding tertiary piperazines, which can be employed for the synthesis of medicinally important analogues. The introduction of these chiral tertiary piperazines resulted in imatinib analogues which exhibited comparable antiproliferative activity to that of their corresponding imatinib counterparts.

Synthesis of hybrid cyclic peptoids and identification of autophagy enhancer

Rajasekhar, Kolla,Narayanaswamy, Nagarjun,Mishra, Piyush,Suresh,Manjithaya, Ravi,Govindaraju

, p. 25 - 30 (2014/03/21)

Cyclic peptoids are potential candidates for diverse biological activities. However, applications of cyclic peptoids are limited by the synthetic difficulties, conformational flexibility of large cyclic peptoids, and lack of secondary amide in the backbone. Herein, an elegant methodology for the synthesis of small and medium-size cyclic hybrid peptoids is developed. aN-Alkyl and aN-acyl substituents in N-(2-aminoethyl)glycine monomers enforce intra- and intermolecular cyclization to form stable sixand 12-membered cyclic products, respectively. NMR studies show inter- and intramolecular hydrogen bonding in six- and 12-membered cyclic peptoids, respectively. Screening of a cyclic peptoid library resulted in the identification of a potential candidate that enhanced autophagic degradation of cargo in a live cell model. Such upregulation of autophagy using small molecules is a promising approach for elimination of intracellular pathogens and neurodegenerative protein aggregates.

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