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1,2-DISTEAROYL-D70-3-SN-GLYCEROPHOSPHATIDYLCHOLINE is a phospholipid that consists of two stearic acid chains attached to a glycerol backbone, along with a phosphate group and choline head group. It is an essential component of cell membranes, playing a vital role in maintaining their structure and function.
Used in Pharmaceutical Industry:
1,2-DISTEAROYL-D70-3-SN-GLYCEROPHOSPHATIDYLCHOLINE is used as an emulsifier and stabilizer in pharmaceutical formulations to improve the solubility, stability, and absorption of drugs.
Used in Cosmetic Industry:
1,2-DISTEAROYL-D70-3-SN-GLYCEROPHOSPHATIDYLCHOLINE is used as an emulsifier and stabilizer in cosmetic products to create stable emulsions and improve the texture and appearance of the products.
Used in Medical Research:
1,2-DISTEAROYL-D70-3-SN-GLYCEROPHOSPHATIDYLCHOLINE is used as a lipid standard in research settings to study membrane biophysics and lipid metabolism, and has been studied for its potential therapeutic benefits in treating various medical conditions.
Used in Membrane Biophysics Research:
1,2-DISTEAROYL-D70-3-SN-GLYCEROPHOSPHATIDYLCHOLINE is used as a model lipid to investigate the properties and behavior of biological membranes, providing insights into the structure, dynamics, and function of cell membranes.
Used in Lipid Metabolism Research:
1,2-DISTEAROYL-D70-3-SN-GLYCEROPHOSPHATIDYLCHOLINE is used as a lipid standard in studies of lipid metabolism, helping researchers understand the processes involved in the synthesis, transport, and degradation of lipids in the body.

56952-01-3

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56952-01-3 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 56952-01-3 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 5,6,9,5 and 2 respectively; the second part has 2 digits, 0 and 1 respectively.
Calculate Digit Verification of CAS Registry Number 56952-01:
(7*5)+(6*6)+(5*9)+(4*5)+(3*2)+(2*0)+(1*1)=143
143 % 10 = 3
So 56952-01-3 is a valid CAS Registry Number.

56952-01-3Upstream product

56952-01-3Downstream Products

56952-01-3Relevant academic research and scientific papers

Elastic deformation of membrane bilayers probed by deuterium NMR relaxation

Brown, Michael F.,Thurmond, Robin L.,Dodd, Steven W.,Otten, Doerte,Beyer, Klaus

, p. 8471 - 8484 (2007/10/03)

In deuterium (2H) NMR spectroscopy of fluid lipid bilayers, the average structure is manifested in the segmental order parameters (SCD) of the flexible molecules. The corresponding spin-lattice relaxation rates (R1Z) depend on both the amplitudes and the rates of the segmental fluctuations, and indicate the types of lipid motions. By combining 2H NMR order parameter measurements with relaxation studies, we have obtained a more comprehensive picture of lipids in the liquid-crystalline (Lα) state than formerly possible. Our data suggest that a lipid bilayer constitutes an ordered fluid, in which the phospholipids are grafted to the aqueous interface via their polar headgroups, whereas the fatty acyl chains are in effect liquid hydrocarbon. Studies of 2H-labeled saturated lipids indicate their R1Z rates and SCD order parameters are correlated by a model-free, square-law functional dependence, signifying the presence of relatively slow bilayer fluctuations. A new composite membrane deformation model explains simultaneously the frequency (magnetic field) dependence and the angular anisotropy of the relaxation. The results imply the R1Z rates are due to a broad spectrum of 3-D collective bilayer excitations, together with effective axial rotations of the lipids. For the first time, NMR relaxation studies show that the viscoelastic properties of membrane lipids at megahertz frequencies are modulated by the lipid acyl length (bilayer thickness), polar headgroups (bilayer interfacial area), inclusion of a nonionic detergent (C12E8), and the presence of cholesterol, leading to a range of bilayer softness. Our findings imply the concept of elastic deformation is relevant on lengths approaching the bilayer thickness and less (the mesoscopic scale), and suggest that application of combined R12 and SCD studies of phospholipids can be used as a simple membrane elastometer. Heuristic estimates of the bilayer bending rigidity κ and the area elastic modulus Ka enable comparison to other biophysical studies, involving macroscopic deformation of thin membrane lipid films. Finally, the bilayer softness may be correlated with the lipid diversity of biomembranes, for example, with regard to membrane curvature, repulsive interactions between bilayers, and lipid-protein interactions.

Structural properties of docosahexaenoyl phospholipid bilayers investigated by solid-state 2H NMR spectroscopy

Petrache,Salmon,Brown

, p. 12611 - 12622 (2007/10/03)

Polyunsaturated lipids in cellular membranes are known to play key roles in such diverse biological processes as vision, neuronal signaling, and apoptosis. One hypothesis is that polyunsaturated lipids are involved in second messenger functions in biologi

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