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Bola Sophorolipids, a compound of biocompatibility and ecological friendliness, represent a paramount surfactant essence prevalent in the biomedical sector. These remarkable lipids unveil a remarkable proclivity towards countering microbial drugs, signifying their unmatched potential in studying sundry infections spawned by bacteria, fungi and viruses. Synonyms: 2b-O-b-D-glucopyranosyl-b-D-glucopyranosyl; 17-L-([2b-O-b-D-glucopyranosyl-b-D-glucopyranosyl]-oxy)-cis-9-octadecenoate. Molecular formula: C42H74O23. Mole weight: 947.02.
Phospholipids
Lipid substances, containing a phosphate group and one or more fatty acid residues, which are essential components of cell membranes. Product ID: PE-0284. Category: Suppository Bases. Product Keywords: Pharmaceutical Excipients; Semi-solid Dosage Form; Suppository Bases; Others; Phospholipids; PE-0284. Purity: 0.99. Storage: -20°C.
Phospholipids
Lipid substances, containing a phosphate group and one or more fatty acid residues, which are essential components of cell membranes. Product ID: PE-0316. Category: Micro-drug Delivery Systems. Product Keywords: Pharmaceutical Excipients; Micro-drug Delivery Systems; Phospholipids; PE-0316. Purity: 0.99. Storage: -20°C.
0.5% DiI Encapsulated DOTAP Liposomes
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
0.5% DiI Encapsulated DOTMA Liposomes
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
0.5% DiO Encapsulated DOTAP Liposomes
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
0.5% DiO Encapsulated DOTMA Liposomes
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
0.5% NBD-DOPE Encapsulated DDAB Liposomes
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
0.5% Rhod-PE Encapsulated DDAB Liposomes
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
Cationic liposomes are used for the delivery of genetic materials such as various types of DNA and RNA. In order to capture more plasmid efficiently, the negative charge of pDNA is neutralized with positive charge of cationic lipids due to electrostatic interaction and deliver them into cells. So they are researched for use as delivery vectors in gene therapy. Uses: Cancer research; target delivery. Group: Cationic liposome. Categories: Niosomes, ethosomes, and transfersomes.
1,2,3,6-Tetra-O-benzoyl-b-D-mannopyranose is a carbohydrate moiety harnessed for glycoconjugate biosynthesis - molecules bearing carbohydrates linked covalently to proteins or lipids. Frequently utilized for the synthesis of glycopeptides and glycolipids, these play pivotal roles in the exploration of infectious ailments and neoplasms. The molecule's intricate structure confers a lasting impact on the formation and investigation of biologically relevant chemical compounds. CAS No. 171482-60-3. Molecular formula: C34H28O10. Mole weight: 596.58.
1,2-diacylglycerol 3-α-glucosyltransferase
The enzyme from the bacterium Acholeplasma laidlawii, which lacks a cell wall, produces the major non-bilayer lipid in the organism. The enzyme from the bacterium Agrobacterium tumefaciens acts under phosphate deprivation, generating glycolipids as surrogates for phospholipids. The enzyme belongs to the GT4 family of configuration-retaining glycosyltransferases. Many diacylglycerols with long-chain acyl groups can act as acceptors. cf. EC 2.4.1.336, monoglucosyldiacylglycerol synthase. Group: Enzymes. Synonyms: mgs (gene name); UDP-glucose:diacylglycerol glucosyltransferase; UDP-glucose:1,2-diacylglycerol glucosyltransferase; uridine diphosphoglucose-diacylglycerol glucosyltransferas. Enzyme Commission Number: EC 2.4.1.337. Storage: Store it at +4 ?C for short term. For long term storage, store it at -20 ?C?-80 ?C. Form: Liquid or lyophilized powder. EXWM-2575; 1,2-diacylglycerol 3-α-glucosyltransferase; EC 2.4.1.337; mgs (gene name); UDP-glucose:diacylglycerol glucosyltransferase; UDP-glucose:1,2-diacylglycerol glucosyltransferase; uridine diphosphoglucose-diacylglycerol glucosyltransferase; UDP-glucose-diacylglycerol glucosyltransferase; UDP-glucose:1,2-diacylglycerol 3-D-glucosyltransferase; UDP-glucose:1,2-diacyl-sn-glycerol 3-D-glucosyltransferase; 1,2-diacylglycerol 3-glucosyltransferase (ambiguous). Cat No: EXWM-2575.
1,2-Dimyristoyl-rac-glycerol
1,2-Dimyristoyl-rac-glycerol (C14:0) is a carboxylic acid ester, glycerolipid and diglyceride with an additional myristoyl group that facilitates interactions between proteins and lipids. Can be used as detergent or reagent. It plays a role in cell biology experiments involving the metabolism and metabolic pathways of glycerolipids. As a diglyceride, this substance consists of two fatty acid chains covalently bonded in the 1,2-form to a glycerol molecule. The diglyceride (DAG) study investigated the process by which DAG is depleted to inhibit fat accumulation. Reagent grade, for research use only. Uses: Scientific research. Group: Biochemical assay reagents. CAS No. 20255-94-1. Pack Sizes: 250 mg; 500 mg. Product ID: HY-W127409.
1,3-Distearoyl-2-chloropropanediol-d5
Labeled 1,3-Distearoyl-2-chloropropanediol. New lipids in food protein hydrolyzates. Group: Biochemicals. Alternative Names: Octadecanoic Acid 1,1'-(2-Chloro-1,3-propanediyl-d5) Ester. Grades: Highly Purified. Pack Sizes: 1mg. US Biological Life Sciences.
Worldwide
1,3-Distearoyl-2-chloropropanediol-d5 (Major)
1,3-Distearoyl-2-chloropropanediol-d5 (Major) is an isotopic analogue of 1,3-Distearoyl-2-chloropropanediol (D493510). New lipids in food protein hydrolyzates. Group: Biochemicals. Grades: Highly Purified. CAS No. 1329796-49-7. Pack Sizes: 1mg, 10mg. Molecular Formula: C39H70D5ClO4. US Biological Life Sciences.
1,4-Dimethoxybenzene is an endogenous metabolite. 1,4-Dimethoxybenzene has an anti-anxiety effect, increasing atherogenic index (AI) levels in rabbits and inducing sedentary behavior. Sedentary behavior may increase blood cholesterol levels and disrupt blood lipids [1]. 1,4-Dimethoxybenzene considers to be not clastogenic in the in vivo micronucleus test [2]. Uses: Scientific research. Group: Natural products. CAS No. 150-78-7. Pack Sizes: 10 mM * 1 mL; 25 g; 50 g; 100 g. Product ID: HY-W015780.
18:1 Ether Coenzyme A Ammonium salt, a crucial ingredient in synthesizing glycosphingolipids and phospholipids, holds an instrumental position in the oxidative disposal of fatty acids while also being a vital agent for drug and toxin metabolism. It is a medically potent recourse for lipid abnormalities and certain inherited metabolic disorders, offering a path of primacy for therapeutic intervention. Synonyms: (9Z-octadecenyl) Coenzyme A (ammonium salt); triazanium (2R, 3S, 4R, 5R) -5- (6-amino-9H-purin-9-yl) -4-hydroxy-2- ( ( ( ( ( ( (R) -3-hydroxy-2, 2-dimethyl-4- ( (3- ( (2- ( ( (Z) -octadec-9-en-1-yl) thio) ethyl) amino) -3-oxopropyl) amino) -4-oxobutoxy) oxidophosphoryl) oxy) oxidophosphoryl) oxy) methyl) tetrahydrofuran-3-yl hydrogen phosphate; 9H-Purin-6-amine, 9-[(2ξ)-5-O-[hydroxy[[hydroxy[(3R)-3-hydroxy-2,2-dimethyl-4-[[3-[[2-[(9Z)-9-octadecen-1-ylthio]ethyl]amino]-3-oxopropyl]amino]-4-oxobutoxy]phosphinyl]oxy]phosphinyl]-3-O-phosphono-β-D-threo-pentofuranosyl]-, triammonium salt. Grades: >99%. CAS No. 2260670-62-8. Molecular formula: C39H79N10O16P3S. Mole weight: 1068.46.
1, 8-Bis (dimethylamino) naphthalene, also referred to as protone sponge, is a lipophilic proton trapping agent. 1, 8-Bis (dimethylamino) naphthalene is used in the matrix for mass spectroscopy analysis of lipids and fatty acids. Group: Biochemicals. Alternative Names: N,N,N,N-Tetramethyl-1,8-diaminonaphthalene; N,N,N,N-Tetramethyl-1,8-naphthalenediamine; N1,N1,N8,N8-Tetramethyl-1,8-naphthalenediamine. Grades: Highly Purified. CAS No. 20734-58-1. Pack Sizes: 50g. US Biological Life Sciences.
Worldwide
1-Deoxy-2-fluoronojirimycin
1-Deoxy-2-fluoronojirimycin is a pharmacological therapy available for patients suffering from type 1 Gaucher disease. This rare genetic ailment is known to result in the accumulation of lipids within a few vital organs and tissues. Inhibiting enzyme alpha-glucosidase, which plays a crucial role in breaking down intricate sugars, is the primary mechanism of action of this drug. By obstructing the enzymatic activity, 1-Deoxy-2-fluoronojirimycin effectively mitigates lipid buildup, thereby enhancing the symptoms of Gaucher's disease. Molecular formula: C6H12FNO4. Mole weight: 181.16.
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