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N,N-dimethyl-3-(4-ethylphenyl)propylamine is an organic compound with the chemical formula C13H21N. It is a derivative of propylamine, featuring a 4-ethylphenyl group attached to the third carbon of the propylamine chain. The molecule also contains two methyl groups attached to the nitrogen atom, which are responsible for its N,N-dimethyl naming. N,N-dimethyl-3-(4-ethylphenyl)propylamine is a colorless liquid with a distinct amine-like odor and is soluble in organic solvents. It is primarily used as a chemical intermediate in the synthesis of various pharmaceuticals and agrochemicals, particularly in the production of certain pesticides and drugs. Due to its potential applications and reactivity, it is important to handle N,N-dimethyl-3-(4-ethylphenyl)propylamine with care, as it can be hazardous under certain conditions.

7119-46-2

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7119-46-2 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 7119-46-2 includes 7 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 4 digits, 7,1,1 and 9 respectively; the second part has 2 digits, 4 and 6 respectively.
Calculate Digit Verification of CAS Registry Number 7119-46:
(6*7)+(5*1)+(4*1)+(3*9)+(2*4)+(1*6)=92
92 % 10 = 2
So 7119-46-2 is a valid CAS Registry Number.

7119-46-2Upstream product

7119-46-2Downstream Products

7119-46-2Relevant academic research and scientific papers

Synthesis, pharmacological and biophysical characterization, and membrane-interaction QSAR analysis of cationic amphiphilic model compounds

Klein, Christian D. P.,Klingmüller, Martin,Schellinski, Christiane,Landmann, Silke,Hauschild, Stefanie,Heber, Dieter,Mohr, Klaus,Hopfinger

, p. 3874 - 3888 (1999)

Cationic amphiphilic drugs have a propensity to interact with biological interphases. This study was designed to gain more insight into the molecular properties of catamphiphilic drugs which govern this type of interaction. A series of phenylpropylamine model compounds were synthesized in which modifications were incorporated at the aromatic part of the molecule. The replacement of 45Ca2+ from phosphatidylserine monolayers served to monitor drug binding to the phospholipid. The influence on the phase- transition temperature of liposomes of dipalmitoylphosphatidic acid was measured to assess the perturbing action of the drugs on the structural organization of phospholipid assemblies. The antiarrhythmic activity of the compounds was determined in Langendorff preparations of guinea pig hearts to assess the membrane-stabilizing action. Quantitative structure-activity relationship (QSAR) models for these endpoints were developed using both intra- and intermolecular QSAR descriptors. Intermolecular membrane- interaction descriptors were derived from molecular dynamics simulations of the compounds in a model phospholipid monolayer. QSAR models were derived for all endpoints using partial least-squares regression (PLS) and a genetic algorithm tool, the genetic function approximation (GFA). Membrane- interaction descriptors appear to be of a particular importance in explaining the influence of the compounds on the phase-transition temperature of DPPA liposomes, while the other endpoints can be adequately modeled by intramolecular descriptors. The calcium-displacing activity at phosphatidylserine monolayers is governed by the electrostatic properties of the compounds. Measures of lipophilicity and molecular size are of particular importance for antiarrhythmic activity. Possible improvements to both the molecular modeling and the applied computational protocol of membrane-solute systems are identified and discussed.

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