Exact Mass: 1076.3373
Exact Mass Matches: 1076.3373
Found 17 metabolites which its exact mass value is equals to given mass value 1076.3373
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within given mass tolerance error 0.05 dalton. Try search metabolite list with more accurate mass tolerance error
0.01 dalton.
(9E)-10-nitrooctadec-9-enoyl-CoA
(9e)-10-nitrooctadec-9-enoyl-coa is an acyl-CoA or acyl-coenzyme A. More specifically, it is a (9E)-10-nitrooctadec-9-enoic acid thioester of coenzyme A. (9e)-10-nitrooctadec-9-enoyl-coa is an acyl-CoA with 10 fatty acid group as the acyl moiety attached to coenzyme A. Coenzyme A was discovered in 1946 by Fritz Lipmann (Journal of Biological Chemistry (1946) 162 (3): 743–744) and its structure was determined in the early 1950s at the Lister Institute in London. Coenzyme A is a complex, thiol-containing molecule that is naturally synthesized from pantothenate (vitamin B5), which is found in various foods such as meat, vegetables, cereal grains, legumes, eggs, and milk. More specifically, coenzyme A (CoASH or CoA) consists of a beta-mercaptoethylamine group linked to the vitamin pantothenic acid (B5) through an amide linkage and 3-phosphorylated ADP. Coenzyme A is synthesized in a five-step process that requires four molecules of ATP, pantothenate and cysteine. It is believed that there are more than 1100 types of acyl-CoA’s in the human body, which also corresponds to the number of acylcarnitines in the human body. Acyl-CoAs exists in all living species, ranging from bacteria to plants to humans. The general role of acyl-CoA’s is to assist in transferring fatty acids from the cytoplasm to mitochondria. This process facilitates the production of fatty acids in cells, which are essential in cell membrane structure. Acyl-CoAs are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. In this way, fats are converted to ATP -- or biochemical energy. Acyl-CoAs can be classified into 9 different categories depending on the size of their acyl-group: 1) short-chain acyl-CoAs; 2) medium-chain acyl-CoAs; 3) long-chain acyl-CoAs; and 4) very long-chain acyl-CoAs; 5) hydroxy acyl-CoAs; 6) branched chain acyl-CoAs; 7) unsaturated acyl-CoAs; 8) dicarboxylic acyl-CoAs and 9) miscellaneous acyl-CoAs. Short-chain acyl-CoAs have acyl-groups with two to four carbons (C2-C4), medium-chain acyl-CoAs have acyl-groups with five to eleven carbons (C5-C11), long-chain acyl-CoAs have acyl-groups with twelve to twenty carbons (C12-C20) while very long-chain acyl-CoAs have acyl groups with more than 20 carbons. (9e)-10-nitrooctadec-9-enoyl-coa is therefore classified as a medium chain acyl-CoA. The oxidative degradation of fatty acids is a two-step process, catalyzed by acyl-CoA synthetase/synthase. Fatty acids are first converted to their acyl phosphate, the precursor to acyl-CoA. The latter conversion is mediated by acyl-CoA synthase. Three types of acyl-CoA synthases are employed, depending on the chain length of the fatty acid. (9e)-10-nitrooctadec-9-enoyl-coa, being a medium chain acyl-CoA is a substrate for medium chain acyl-CoA synthase. The second step of fatty acid degradation is beta oxidation. Beta oxidation occurs in mitochondria and, in the case of very long chain acyl-CoAs, the peroxisome. After its formation in the cytosol, (9E)-10-nitrooctadec-9-enoyl-CoA is transported into the mitochondria, the locus of beta oxidation. Transport of (9E)-10-nitrooctadec-9-enoyl-CoA into the mitochondria requires carnitine palmitoyltransferase 1 (CPT1), which converts (9E)-10-nitrooctadec-9-enoyl-CoA into (9E)-10-nitrooctadec-9-enoylcarnitine, which gets transported into the mitochondrial matrix. Once in the matrix, (9E)-10-nitrooctadec-9-enoylcarnitine is converted back to (9E)-10-nitrooctadec-9-enoyl-CoA by CPT2, whereupon beta-oxidation can begin. Beta oxidation of (9E)-10-nitrooctadec-9-enoyl-CoA occurs in four steps. First, since (9E)-10-nitrooctadec-9-enoyl-CoA is a medium chain acyl-CoA it is the substrate for a medium chain acyl-CoA dehydrogenase, which catalyzes dehydrogenation of (9E)-10-nitrooctadec-9-enoyl-CoA, creating a double bond between the alpha and beta carbons. FAD is the hydrogen acceptor, yielding FADH2. Second, Enoyl-CoA hydrase ca...
(9E)-9-nitrooctadec-9-enoyl-CoA
(9e)-9-nitrooctadec-9-enoyl-coa is an acyl-CoA or acyl-coenzyme A. More specifically, it is a (9E)-9-nitrooctadec-9-enoic acid thioester of coenzyme A. (9e)-9-nitrooctadec-9-enoyl-coa is an acyl-CoA with 10 fatty acid group as the acyl moiety attached to coenzyme A. Coenzyme A was discovered in 1946 by Fritz Lipmann (Journal of Biological Chemistry (1946) 162 (3): 743–744) and its structure was determined in the early 1950s at the Lister Institute in London. Coenzyme A is a complex, thiol-containing molecule that is naturally synthesized from pantothenate (vitamin B5), which is found in various foods such as meat, vegetables, cereal grains, legumes, eggs, and milk. More specifically, coenzyme A (CoASH or CoA) consists of a beta-mercaptoethylamine group linked to the vitamin pantothenic acid (B5) through an amide linkage and 3-phosphorylated ADP. Coenzyme A is synthesized in a five-step process that requires four molecules of ATP, pantothenate and cysteine. It is believed that there are more than 1100 types of acyl-CoA’s in the human body, which also corresponds to the number of acylcarnitines in the human body. Acyl-CoAs exists in all living species, ranging from bacteria to plants to humans. The general role of acyl-CoA’s is to assist in transferring fatty acids from the cytoplasm to mitochondria. This process facilitates the production of fatty acids in cells, which are essential in cell membrane structure. Acyl-CoAs are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. In this way, fats are converted to ATP -- or biochemical energy. Acyl-CoAs can be classified into 9 different categories depending on the size of their acyl-group: 1) short-chain acyl-CoAs; 2) medium-chain acyl-CoAs; 3) long-chain acyl-CoAs; and 4) very long-chain acyl-CoAs; 5) hydroxy acyl-CoAs; 6) branched chain acyl-CoAs; 7) unsaturated acyl-CoAs; 8) dicarboxylic acyl-CoAs and 9) miscellaneous acyl-CoAs. Short-chain acyl-CoAs have acyl-groups with two to four carbons (C2-C4), medium-chain acyl-CoAs have acyl-groups with five to eleven carbons (C5-C11), long-chain acyl-CoAs have acyl-groups with twelve to twenty carbons (C12-C20) while very long-chain acyl-CoAs have acyl groups with more than 20 carbons. (9e)-9-nitrooctadec-9-enoyl-coa is therefore classified as a medium chain acyl-CoA. The oxidative degradation of fatty acids is a two-step process, catalyzed by acyl-CoA synthetase/synthase. Fatty acids are first converted to their acyl phosphate, the precursor to acyl-CoA. The latter conversion is mediated by acyl-CoA synthase. Three types of acyl-CoA synthases are employed, depending on the chain length of the fatty acid. (9e)-9-nitrooctadec-9-enoyl-coa, being a medium chain acyl-CoA is a substrate for medium chain acyl-CoA synthase. The second step of fatty acid degradation is beta oxidation. Beta oxidation occurs in mitochondria and, in the case of very long chain acyl-CoAs, the peroxisome. After its formation in the cytosol, (9E)-9-nitrooctadec-9-enoyl-CoA is transported into the mitochondria, the locus of beta oxidation. Transport of (9E)-9-nitrooctadec-9-enoyl-CoA into the mitochondria requires carnitine palmitoyltransferase 1 (CPT1), which converts (9E)-9-nitrooctadec-9-enoyl-CoA into (9E)-9-nitrooctadec-9-enoylcarnitine, which gets transported into the mitochondrial matrix. Once in the matrix, (9E)-9-nitrooctadec-9-enoylcarnitine is converted back to (9E)-9-nitrooctadec-9-enoyl-CoA by CPT2, whereupon beta-oxidation can begin. Beta oxidation of (9E)-9-nitrooctadec-9-enoyl-CoA occurs in four steps. First, since (9E)-9-nitrooctadec-9-enoyl-CoA is a medium chain acyl-CoA it is the substrate for a medium chain acyl-CoA dehydrogenase, which catalyzes dehydrogenation of (9E)-9-nitrooctadec-9-enoyl-CoA, creating a double bond between the alpha and beta carbons. FAD is the hydrogen acceptor, yielding FADH2. Second, Enoyl-CoA hydrase catalyzes the ad...
2-{[(17Z)-17-ethylidene-14-(1-hydroxyethyl)-27-(2-hydroxypropan-2-yl)-20,33-dimethyl-24,30,37,40-tetramethylidene-12,15,22,25,28,35,38-heptaoxo-19,32,42-trioxa-9-thia-3,13,16,23,26,29,36,39,44,45,46,47-dodecaazahexacyclo[39.2.1.1⁸,¹¹.1¹⁸,²¹.1³¹,³⁴.0²,⁷]heptatetraconta-1(43),2(7),3,5,8(47),10,18(46),20,31(45),33,41(44)-undecaen-4-yl]formamido}prop-2-enamide
2-{[(17Z)-17-ethylidene-14-(1-hydroxyethyl)-27-(2-hydroxypropan-2-yl)-20,33-dimethyl-24,30,37,40-tetramethylidene-12,15,22,25,28,35,38-heptaoxo-19,32,42-trioxa-9-thia-3,13,16,23,26,29,36,39,44,45,46,47-dodecaazahexacyclo[39.2.1.1⁸,¹¹.1¹⁸,²¹.1³¹,³⁴.0²,⁷]heptatetraconta-1(43),2(7),3,5,8(47),10,18(46),20,31(45),33,41(44)-undecaen-4-yl]formamido}prop-2-enamide_major
2-{[(17Z)-17-ethylidene-14-(1-hydroxyethyl)-27-(2-hydroxypropan-2-yl)-20,33-dimethyl-24,30,37,40-tetramethylidene-12,15,22,25,28,35,38-heptaoxo-19,32,42-trioxa-9-thia-3,13,16,23,26,29,36,39,44,45,46,47-dodecaazahexacyclo[39.2.1.1?,¹¹.1¹?,²¹.1³¹,³?.0²,?]heptatetraconta-1(43),2(7),3,5,8(47),10,18(46),20,31(45),33,41(44)-undecaen-4-yl]formamido}prop-2-enamide
2-[[(17Z)-17-ethylidene-12,15,22,25,28,35,38-heptahydroxy-14-(1-hydroxyethyl)-27-(2-hydroxypropan-2-yl)-20,33-dimethyl-24,30,37,40-tetramethylidene-19,32,42-trioxa-9-thia-3,13,16,23,26,29,36,39,44,45,46,47-dodecazahexacyclo[39.2.1.18,11.118,21.131,34.02,7]heptatetraconta-1(43),2(7),3,5,8(47),10,12,15,18(46),20,22,25,28,31(45),33,35,38,41(44)-octadecaene-4-carbonyl]amino]prop-2-enimidic acid
Kp7-6
Kp7-6, a Fas mimetic peptide, is a Fas/FasL antagonist. Kp7-6 protects cells from Fas-mediated apoptosis, and protects mice from Fas-mediated hepatic injury[1][2].