2,3-Dihydroxypropyl oleate

2,3-Dihydroxypropyl oleate is a lipid of Glycerolipids (GL) class. The involved functions are known as enzyme activity and acyltransferase activity. 2,3-dihydroxypropyl oleate often locates in soluble fraction.

Cross Reference

Introduction

To understand associated biological information of 2,3-Dihydroxypropyl oleate, we collected biological information of abnormalities, associated pathways, cellular/molecular locations, biological functions, related genes/proteins, lipids and common seen animal/experimental models with organized paragraphs from literatures.

What diseases are associated with 2,3-Dihydroxypropyl oleate?

There are no associated biomedical information in the current reference collection.

Possible diseases from mapped MeSH terms on references

We collected disease MeSH terms mapped to the references associated with 2,3-Dihydroxypropyl oleate

PubChem Associated disorders and diseases

What pathways are associated with 2,3-Dihydroxypropyl oleate

There are no associated biomedical information in the current reference collection.

PubChem Biomolecular Interactions and Pathways

Link to PubChem Biomolecular Interactions and Pathways

What cellular locations are associated with 2,3-Dihydroxypropyl oleate?

Related references are published most in these journals:

Location Cross reference Weighted score Related literatures
Loading... please refresh the page if content is not showing up.

What functions are associated with 2,3-Dihydroxypropyl oleate?


Related references are published most in these journals:

Function Cross reference Weighted score Related literatures

What lipids are associated with 2,3-Dihydroxypropyl oleate?

There are no associated biomedical information in the current reference collection.

What genes are associated with 2,3-Dihydroxypropyl oleate?

There are no associated biomedical information in the current reference collection.

What common seen animal models are associated with 2,3-Dihydroxypropyl oleate?

There are no associated biomedical information in the current reference collection.

NCBI Entrez Crosslinks

All references with 2,3-Dihydroxypropyl oleate

Download all related citations
Per page 10 20 50 100 | Total 520
Authors Title Published Journal PubMed Link
Yoshikawa K et al. Oscillation of electrical potential in a porous membrane doped with glycerol alpha-monooleate induced by an Na+/K+ concentration gradient. 1984 Biophys. Chem. pmid:6487742
Chernyshev A et al. Kinetic isotope effects of proton transfer in aqueous and methanol containing solutions, and in gramicidin A channels. 2003 Biophys. Chem. pmid:12568940
Kolomytkin OV et al. Ionic channels in Langmuir-Blodgett films imaged by a scanning tunneling microscope. 1991 Biophys. J. pmid:1712239
Helfrich P and Jakobsson E Calculation of deformation energies and conformations in lipid membranes containing gramicidin channels. 1990 Biophys. J. pmid:1692748
Heinemann SH and Sigworth FJ Open channel noise. V. Fluctuating barriers to ion entry in gramicidin A channels. 1990 Biophys. J. pmid:1689592
Lapointe JY and Laprade R Kinetics of carrier-mediated ion transport in two new types of solvent-free lipid bilayers. 1982 Biophys. J. pmid:6896832
Hainsworth AH and Hladky SB Effects of double-layer polarization on ion transport. 1987 Biophys. J. pmid:2432953
Cherezov V et al. Membrane protein crystallization in meso: lipid type-tailoring of the cubic phase. 2002 Biophys. J. pmid:12496106
Crawford GE and Earnshaw JC Viscoelastic relaxation of bilayer lipid membranes. Frequency-dependent tension and membrane viscosity. 1987 Biophys. J. pmid:3607223
Young RC and Feldberg SW Photoinitiated mediated transport of H3O+ and/or OH- across glycerol monooleate bilayers doped with magnesium octaethylporphyrin. 1979 Biophys. J. pmid:262434
Duchek JR and Huebner JS Voltage transients from photo-isomerizing azo dye in bilayer membranes. 1979 Biophys. J. pmid:262438
Chung H and Caffrey M Direct correlation of structure changes and thermal events in hydrated lipid established by simultaneous calorimetry and time-resolved x-ray diffraction. 1992 Biophys. J. pmid:1420889
Chung H and Caffrey M The neutral area surface of the cubic mesophase: location and properties. 1994 Biophys. J. pmid:8161691
Eriksson PO and Lindblom G Lipid and water diffusion in bicontinuous cubic phases measured by NMR. 1993 Biophys. J. pmid:8431537
Chung H and Caffrey M Polymorphism, mesomorphism, and metastability of monoelaidin in excess water. 1995 Biophys. J. pmid:8580338
Feldberg SW et al. Electron transport across glycerol monooleate bilayer lipid membranes facilitated by magnesium etiochlorin. 1981 Biophys. J. pmid:7213929
Andersen OS Ion movement through gramicidin A channels. Single-channel measurements at very high potentials. 1983 Biophys. J. pmid:6188500
Ring A and Sandblom J Evaluation of surface tension and ion occupancy effects on gramicidin A channel lifetime. 1988 Biophys. J. pmid:2454676
Andersen OS Ion movement through gramicidin A channels. Studies on the diffusion-controlled association step. 1983 Biophys. J. pmid:6188502
Cukierman S et al. Proton conduction in gramicidin A and in its dioxolane-linked dimer in different lipid bilayers. 1997 Biophys. J. pmid:9370442
Bihler H and Stark G The inner membrane barrier of lipid membranes experienced by the valinomycin/Rb+ complex: charge pulse experiments at high membrane voltages. 1997 Biophys. J. pmid:9251791
Czeslik C et al. Temperature- and pressure-dependent phase behavior of monoacylglycerides monoolein and monoelaidin. 1995 Biophys. J. pmid:7787028
McIntosh TJ et al. Membrane fusion promoters and inhibitors have contrasting effects on lipid bilayer structure and undulations. 1999 Biophys. J. pmid:10096904
Tsapis N et al. Self diffusion and spectral modifications of a membrane protein, the Rubrivivax gelatinosus LH2 complex, incorporated into a monoolein cubic phase. 2001 Biophys. J. pmid:11509374
Li SJ et al. Effect of electrostatic interactions on phase stability of cubic phases of membranes of monoolein/dioleoylphosphatidic acid mixtures. 2001 Biophys. J. pmid:11463640
Fisher LR and Parker NS Osmotic control of bilayer fusion. 1984 Biophys. J. pmid:6541065
Khvostichenko DS et al. Effects of detergent β-octylglucoside and phosphate salt solutions on phase behavior of monoolein mesophases. 2013 Biophys. J. pmid:24138861
Cherezov V et al. Crystallization screens: compatibility with the lipidic cubic phase for in meso crystallization of membrane proteins. 2001 Biophys. J. pmid:11423409
Crilly JF and Earnshaw JC Photon correlation spectroscopy of bilayer lipid membranes. 1983 Biophys. J. pmid:6838962
Chupin V et al. Effect of phospholipids and a transmembrane peptide on the stability of the cubic phase of monoolein: implication for protein crystallization from a cubic phase. 2003 Biophys. J. pmid:12668446
Ai X and Caffrey M Membrane protein crystallization in lipidic mesophases: detergent effects. 2000 Biophys. J. pmid:10866965
Bach D and Miller IR Glyceryl monooleate black lipid membranes obtained from squalene solutions. 1980 Biophys. J. pmid:7053057
Busath DD et al. Noncontact dipole effects on channel permeation. I. Experiments with (5F-indole)Trp13 gramicidin A channels. 1998 Biophys. J. pmid:9826605
Misquitta Y and Caffrey M Detergents destabilize the cubic phase of monoolein: implications for membrane protein crystallization. 2003 Biophys. J. pmid:14581209
Crawford GE and Earnshaw JC Phase transitions in monoglyceride bilayers. A light scattering study. 1986 Biophys. J. pmid:3719070
Liu J et al. Quantitative ratiometric phosphorescence hypoxia-sensing nanoprobes based on quantum dots/Ir(III) glycerol monoolein cubic-phase nanoparticles. 2017 Biosens Bioelectron pmid:28667838
Zatloukalová M et al. Lipidic liquid crystalline cubic phases for preparation of ATP-hydrolysing enzyme electrodes. 2018 Biosens Bioelectron pmid:28961546
Becker P and Märkl H Modeling of olive oil degradation and oleic acid inhibition during chemostat and batch cultivation of Bacillus thermoleovorans IHI-91. 2000 Biotechnol. Bioeng. pmid:11064331
Laprade R et al. Carrier-mediated ion transport in lipid bilayer membranes. 1984 Can. J. Biochem. Cell Biol. pmid:6498590
Nithipatikom K et al. 2-arachidonoylglycerol: a novel inhibitor of androgen-independent prostate cancer cell invasion. 2004 Cancer Res. pmid:15604240
López CA et al. Amylose folding under the influence of lipids. 2012 Carbohydr. Res. pmid:23128420
Ali MA et al. Enhancing the Solubility and Oral Bioavailability of Poorly Water-Soluble Drugs Using Monoolein Cubosomes. 2017 Chem. Pharm. Bull. pmid:28049915
Sato H et al. Physicochemical stability study on cyclosporine A loaded dry-emulsion formulation with enhanced solubility. 2015 Chem. Pharm. Bull. pmid:25743195
Abe S and Takahashi H A comparative study of the effects of dimethylsulfoxide and glycerol on the bicontinuous cubic structure of hydrated monoolein and its phase behavior. 2007 Chem. Phys. Lipids pmid:17451662
Nilsson A et al. FTIR study of lamellar and reversed micellar phases in the mono-oleoylglycerol/water system. 1994 Chem. Phys. Lipids pmid:8194158
Caboi F et al. Addition of hydrophilic and lipophilic compounds of biological relevance to the monoolein/water system. I. Phase behavior. 2001 Chem. Phys. Lipids pmid:11163344
Murgia S et al. Addition of hydrophilic and lipophilic compounds of biological relevance to the monoolein/water system II - 13C NMR relaxation study. 2001 Chem. Phys. Lipids pmid:11245830
Takahashi H and Jojiki K Water isotope effect on the lipidic cubic phase: Heavy water-Induced interfacial area reduction of monoolein-Water system. 2017 Chem. Phys. Lipids pmid:28888939
Geil B et al. Relating structure and translational dynamics in aqueous dispersions of monoolein. 2000 Chem. Phys. Lipids pmid:10930564
Tauraite D et al. Lipophilic 1,4-naphthoquinone derivatives: synthesis and redox properties in solution and entrapped in the aqueous cubic liquid-crystalline phase of monoolein. 2009 Chem. Phys. Lipids pmid:19428362