18194-24-6 is a lipid of Glycerophospholipids (GP) class. 18194-24-6 is associated with abnormalities such as Cerebrovascular accident, Renal tubular disorder, Atherosclerosis, Hyperlipoproteinemia Type III and Lipid Metabolism Disorders. The involved functions are known as Process, protein folding, Catalyst, Biochemical Pathway and Fold in Medical Device Material. 18194-24-6 often locates in Tissue membrane, Membrane, periplasm, vesicle membrane and outer membrane. The associated genes with 18194-24-6 are Integral Membrane Proteins, Protein Structure, RTN4 gene, RTN4R gene and Protein, Organized by Structure. The related lipids are Micelles, dimyristoylphosphatidylglycerol, 1,2-dihexadecyl-sn-glycero-3-phosphocholine, Unilamellar Vesicles and cholesteryl oleate. The related experimental models are Mouse Model, Arthritis, Adjuvant-Induced, Disease model and Xenograft Model.
To understand associated biological information of 18194-24-6, 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.
18194-24-6 is suspected in Atherosclerosis, Cardiovascular Diseases, Dehydration, Abnormal shape, Renal tubular disorder, Hyperlipoproteinemia Type III and other diseases in descending order of the highest number of associated sentences.
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We collected disease MeSH terms mapped to the references associated with 18194-24-6
There are no associated biomedical information in the current reference collection.
Associated locations are in red color. Not associated locations are in black.
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Function | Cross reference | Weighted score | Related literatures |
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Lipid concept | Cross reference | Weighted score | Related literatures |
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Mouse Model are used in the study 'Association of a model class A (apolipoprotein) amphipathic alpha helical peptide with lipid: high resolution NMR studies of peptide.lipid discoidal complexes.' (Mishra VK et al., 2006).
Arthritis, Adjuvant-Induced are used in the study 'T cell antigen receptor peptide-lipid membrane interactions using surface plasmon resonance.' (Bender V et al., 2004).
Disease model are used in the study 'Kupffer cells do not play a role in governing the efficacy of liposomal mitoxantrone used to treat a tumor model designed to assess drug delivery to liver.' (Lim HJ et al., 2000).
Model | Cross reference | Weighted score | Related literatures |
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Authors | Title | Published | Journal | PubMed Link |
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Lopez CF et al. | Understanding nature's design for a nanosyringe. | 2004 | Proc. Natl. Acad. Sci. U.S.A. | pmid:15070735 |
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Lu JX et al. | The effects of cholesterol on magnetically aligned phospholipid bilayers: a solid-state NMR and EPR spectroscopy study. | 2004 | J. Magn. Reson. | pmid:15082245 |
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Chakrabarti A and Podder SK | Lectin binding to complex carbohydrate at the interface: a study by resonance energy transfer. | 1992 | Indian J. Biochem. Biophys. | pmid:1512011 |
Wu PC et al. | The characterization and biodistribution of cefoxitin-loaded liposomes. | 2004 | Int J Pharm | pmid:15129971 |
Pohle W et al. | Lipid hydration: headgroup CH moieties are involved in water binding. | 2004 May-Jun 5 | Biopolymers | pmid:15137088 |
Boffi F et al. | MRS study of the interaction of dihydropyridines with lipid molecules in phosphatidylcholine vesicles. | 2003 | Physiol Chem Phys Med NMR | pmid:15139283 |
Nusair NA et al. | Investigating fatty acids inserted into magnetically aligned phospholipid bilayers using EPR and solid-state NMR spectroscopy. | 2004 | J. Magn. Reson. | pmid:15140432 |
Páli T et al. | Incorporation of the V-ATPase inhibitors concanamycin and indole pentadiene in lipid membranes. Spin-label EPR studies. | 2004 | Biochim. Biophys. Acta | pmid:15157605 |
Anderson M and Omri A | The effect of different lipid components on the in vitro stability and release kinetics of liposome formulations. | 2004 Jan-Feb | Drug Deliv | pmid:15168789 |
Mondal M and Chakrabarti A | Effect of the glycosphingolipid, GM1 on localization of dibucaine in phospholipid vesicles: a fluorescence study. | 2004 | Chem. Phys. Lipids | pmid:15172834 |
Mills JO and Holland LA | Membrane-mediated capillary electrophoresis: interaction of cationic peptides with bicelles. | 2004 | Electrophoresis | pmid:15174043 |
Bárány-Wallje E et al. | NMR solution structure and position of transportan in neutral phospholipid bicelles. | 2004 | FEBS Lett. | pmid:15178334 |
Gurtovenko AA et al. | Cationic DMPC/DMTAP lipid bilayers: molecular dynamics study. | 2004 | Biophys. J. | pmid:15189847 |
Kasson PM and Pande VS | Molecular dynamics simulation of lipid reorientation at bilayer edges. | 2004 | Biophys. J. | pmid:15189870 |
van der Ende BM et al. | The transmembrane domain of Neu in a lipid bilayer: molecular dynamics simulations. | 2004 | Eur. Biophys. J. | pmid:15197512 |
Ray S and Chakrabarti A | Membrane interaction of erythroid spectrin: surface-density-dependent high-affinity binding to phosphatidylethanolamine. | 2004 Mar-Apr | Mol. Membr. Biol. | pmid:15204438 |
Georgiev G and Lalchev Z | Model study of interactions of high-molecular dextran sulfate with lipid monolayers and foam films. | 2004 | Eur. Biophys. J. | pmid:15205836 |
Lambros MP and Rahman YE | Effects of cyclosporin A on model lipid membranes. | 2004 | Chem. Phys. Lipids | pmid:15210365 |
Chou JJ et al. | Characterization of phospholipid mixed micelles by translational diffusion. | 2004 | J. Biomol. NMR | pmid:15213428 |
Henzler-Wildman KA et al. | Perturbation of the hydrophobic core of lipid bilayers by the human antimicrobial peptide LL-37. | 2004 | Biochemistry | pmid:15222757 |
Huang Q et al. | Bilayer conformation of fusion peptide of influenza virus hemagglutinin: a molecular dynamics simulation study. | 2004 | Biophys. J. | pmid:15240440 |
Jang H et al. | How environment supports a state: molecular dynamics simulations of two states in bacteriorhodopsin suggest lipid and water compensation. | 2004 | Biophys. J. | pmid:15240452 |
Jiang FY et al. | Molecular dynamics simulations of the lipid bilayer edge. | 2004 | Biophys. J. | pmid:15240456 |
Binder H and Lindblom G | A molecular view on the interaction of the trojan peptide penetratin with the polar interface of lipid bilayers. | 2004 | Biophys. J. | pmid:15240468 |
Leidy C et al. | Evolution of a rippled membrane during phospholipase A2 hydrolysis studied by time-resolved AFM. | 2004 | Biophys. J. | pmid:15240475 |
Reddy ST et al. | Potential role for mitogen-activated protein kinase phosphatase-1 in the development of atherosclerotic lesions in mouse models. | 2004 | Arterioscler. Thromb. Vasc. Biol. | pmid:15242861 |
Conaughty JM et al. | Antifungal penetration into normal rabbit nucleus pulposus. | 2004 | Spine | pmid:15247589 |
Hong S et al. | Interaction of poly(amidoamine) dendrimers with supported lipid bilayers and cells: hole formation and the relation to transport. | 2004 Jul-Aug | Bioconjug. Chem. | pmid:15264864 |
Partenskii MB et al. | Membrane inclusions as coupled harmonic oscillators: effects due to anisotropic membrane slope relaxation. | 2004 | J Chem Phys | pmid:15267626 |
Yowler BC and Schengrund CL | Botulinum neurotoxin A changes conformation upon binding to ganglioside GT1b. | 2004 | Biochemistry | pmid:15274627 |
Buffy JJ et al. | Solid-state NMR investigation of the selective perturbation of lipid bilayers by the cyclic antimicrobial peptide RTD-1. | 2004 | Biochemistry | pmid:15274634 |