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1-(2-chlorobenzyl)pyrrolidin-3-ol is a synthetic chemical compound characterized by a pyrrolidine ring with a hydroxyl group attached to the third carbon and a 2-chlorobenzyl group attached to the first carbon. 1-(2-chlorobenzyl)pyrrolidin-3-ol holds potential pharmacological and medicinal applications due to its unique molecular structure, which may contribute to its biological activity and interaction with receptors or enzymes in the body.

1033012-63-3

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1033012-63-3 Usage

Uses

Used in Pharmaceutical Industry:
1-(2-chlorobenzyl)pyrrolidin-3-ol is used as a potential active pharmaceutical ingredient for its possible biological activity, which may be attributed to the presence of the chlorobenzyl group. 1-(2-chlorobenzyl)pyrrolidin-3-ol could be further explored for its effects on receptors or enzymes, potentially leading to the development of new drugs.
Used in Medicinal Chemistry Research:
As a compound with a pyrrolidin-3-ol moiety, which is commonly found in pharmaceuticals, 1-(2-chlorobenzyl)pyrrolidin-3-ol is used as a subject of study in medicinal chemistry. Researchers may investigate its mechanism of action, interactions with biological targets, and potential applications in the treatment of various diseases.

Check Digit Verification of cas no

The CAS Registry Mumber 1033012-63-3 includes 10 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 7 digits, 1,0,3,3,0,1 and 2 respectively; the second part has 2 digits, 6 and 3 respectively.
Calculate Digit Verification of CAS Registry Number 1033012-63:
(9*1)+(8*0)+(7*3)+(6*3)+(5*0)+(4*1)+(3*2)+(2*6)+(1*3)=73
73 % 10 = 3
So 1033012-63-3 is a valid CAS Registry Number.

1033012-63-3Downstream Products

1033012-63-3Relevant academic research and scientific papers

Design and synthesis of Rho kinase inhibitors (II)

Iwakubo, Masayuki,Takami, Atsuya,Okada, Yuji,Kawata, Takehisa,Tagami, Yoshimichi,Ohashi, Hiroshi,Sato, Motoko,Sugiyama, Terumi,Fukushima, Kayoko,Iijima, Hiroshi

, p. 350 - 364 (2008/02/04)

In a previous study, we identified several structurally unrelated scaffolds of the Rho kinase inhibitor using pharmacophore information obtained from the results of a high-throughput screening and structural information from a homology model of Rho kinase. 1H-Indazole is one of the candidate scaffolds on which a new series of potent Rho kinase inhibitors could be developed. In this study, the detailed structure-activity relationship of 1H-indazole analogues was studied. During this study, we found that the cell-free enzyme inhibitory potential of Rho kinase inhibitors having the 1H-indazole scaffold did not necessarily correlate with their inhibitory potential toward the chemotaxis of cultured cells. The choice of the linker substructure was shown to be an important factor for the 1H-indazole analogues to inhibit the chemotaxis of cells. Optimization of the 1H-indazole inhibitors with respect to the in vitro inhibition of monocyte chemotaxis induced by MCP-1 was carried out. The inhibitory potential was improved both in the cell-free enzyme assay and in the chemotaxis assay.

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