Exact Mass: 497.37161860000003

Exact Mass Matches: 497.37161860000003

Found 108 metabolites which its exact mass value is equals to given mass value 497.37161860000003, within given mass tolerance error 0.05 dalton. Try search metabolite list with more accurate mass tolerance error 0.01 dalton.

(5Z,8Z,13E,15S)-11,12,15-Trihydroxyicosa-5,8,13-trienoylcarnitine

3-[(11,12,15-trihydroxyicosa-5,8,13-trienoyl)oxy]-4-(trimethylazaniumyl)butanoate

C27H47NO7 (497.3352352)


(5Z,8Z,13E,15S)-11,12,15-trihydroxyicosa-5,8,13-trienoylcarnitine is an acylcarnitine. More specifically, it is an (5Z,8Z,13E,15S)-11,12,15-trihydroxyicosa-5,8,13-trienoic acid ester of carnitine. Acylcarnitines were first discovered more than 70 year ago (PMID: 13825279). It is believed that there are more than 1000 types of acylcarnitines in the human body. The general role of acylcarnitines is to transport acyl-groups (organic acids and fatty acids) from the cytoplasm into the mitochondria so that they can be broken down to produce energy. This process is known as beta-oxidation. According to a recent review [Dambrova et al. 2021, Physiological Reviews], acylcarnitines (ACs) can be classified into 9 different categories depending on the type and size of their acyl-group: 1) short-chain ACs; 2) medium-chain ACs; 3) long-chain ACs; 4) very long-chain ACs; 5) hydroxy ACs; 6) branched chain ACs; 7) unsaturated ACs; 8) dicarboxylic ACs and 9) miscellaneous ACs. Short-chain ACs have acyl-groups with two to five carbons (C2-C5), medium-chain ACs have acyl-groups with six to thirteen carbons (C6-C13), long-chain ACs have acyl-groups with fourteen to twenty once carbons (C14-C21) and very long-chain ACs have acyl groups with more than 22 carbons. (5Z,8Z,13E,15S)-11,12,15-trihydroxyicosa-5,8,13-trienoylcarnitine is therefore classified as a long chain AC. As a long-chain acylcarnitine (5Z,8Z,13E,15S)-11,12,15-trihydroxyicosa-5,8,13-trienoylcarnitine is generally formed through esterification with long-chain fatty acids obtained from the diet. The main function of most long-chain acylcarnitines is to ensure long chain fatty acid transport into the mitochondria (PMID: 22804748). Altered levels of long-chain acylcarnitines can serve as useful markers for inherited disorders of long-chain fatty acid metabolism. Carnitine palmitoyltransferase I (CPT I, EC:2.3.1.21) is involved in the synthesis of long-chain acylcarnitines (more than C12) on the mitochondrial outer membrane. Elevated serum/plasma levels of long-chain acylcarnitines are not only markers for incomplete FA oxidation but also are indicators of altered carbohydrate and lipid metabolism. High serum concentrations of long-chain acylcarnitines in the postprandial or fed state are markers of insulin resistance and arise from insulins inability to inhibit CPT-1-dependent fatty acid metabolism in muscles and the heart (PMID: 19073774). Increased intracellular content of long-chain acylcarnitines is thought to serve as a feedback inhibition mechanism of insulin action (PMID: 23258903). In healthy subjects, increased concentrations of insulin effectively inhibits long-chain acylcarnitine production. Several studies have also found increased levels of circulating long-chain acylcarnitines in chronic heart failure patients (PMID: 26796394). The study of acylcarnitines is an active area of research and it is likely that many novel acylcarnitines will be discovered in the coming years. It is also likely that many novel roles in health and disease will be uncovered. An excellent review of the current state of knowledge for acylcarnitines is available at [Dambrova et al. 2021, Physiological Reviews].

   

(16Z)-14-Hydroxydocos-16-enoylcarnitine

3-[(14-hydroxydocos-16-enoyl)oxy]-4-(trimethylazaniumyl)butanoate

C29H55NO5 (497.408002)


(16Z)-14-Hydroxydocos-16-enoylcarnitine is an acylcarnitine. More specifically, it is an (16Z)-14-hydroxydocos-16-enoic acid ester of carnitine. Acylcarnitines were first discovered more than 70 year ago (PMID: 13825279). It is believed that there are more than 1000 types of acylcarnitines in the human body. The general role of acylcarnitines is to transport acyl-groups (organic acids and fatty acids) from the cytoplasm into the mitochondria so that they can be broken down to produce energy. This process is known as beta-oxidation. According to a recent review [Dambrova et al. 2021, Physiological Reviews], acylcarnitines (ACs) can be classified into 9 different categories depending on the type and size of their acyl-group: 1) short-chain ACs; 2) medium-chain ACs; 3) long-chain ACs; 4) very long-chain ACs; 5) hydroxy ACs; 6) branched chain ACs; 7) unsaturated ACs; 8) dicarboxylic ACs and 9) miscellaneous ACs. Short-chain ACs have acyl-groups with two to five carbons (C2-C5), medium-chain ACs have acyl-groups with six to thirteen carbons (C6-C13), long-chain ACs have acyl-groups with fourteen to twenty once carbons (C14-C21) and very long-chain ACs have acyl groups with more than 22 carbons. (16Z)-14-Hydroxydocos-16-enoylcarnitine is therefore classified as a very-long chain AC. As a very long-chain acylcarnitine (16Z)-14-Hydroxydocos-16-enoylcarnitine is generally formed in the cytoplasm from very long acyl groups synthesized by fatty acid synthases or obtained from the diet. Very-long-chain fatty acids are generally too long to be involved in mitochondrial beta-oxidation. As a result peroxisomes are the main organelle where very-long-chain fatty acids are metabolized and their acylcarnitines synthesized (PMID: 18793625). Altered levels of very long-chain acylcarnitines can serve as useful markers for inherited disorders of peroxisomal metabolism. The study of acylcarnitines is an active area of research and it is likely that many novel acylcarnitines will be discovered in the coming years. It is also likely that many novel roles in health and disease will be uncovered. An excellent review of the current state of knowledge for acylcarnitines is available at [Dambrova et al. 2021, Physiological Reviews].

   

7-[(1R,2R,3R)-3-Hydroxy-2-[(1E,3S)-3-Hydroxyoct-1-en-1-yl]-5-oxocyclopentyl]heptanoylcarnitine

3-({7-[3-hydroxy-2-(3-hydroxyoct-1-en-1-yl)-5-oxocyclopentyl]heptanoyl}oxy)-4-(trimethylazaniumyl)butanoate

C27H47NO7 (497.3352352)


7-[(1R,2R,3R)-3-hydroxy-2-[(1E,3S)-3-hydroxyoct-1-en-1-yl]-5-oxocyclopentyl]heptanoylcarnitine is an acylcarnitine. More specifically, it is an 7-[(1R,2R,3R)-3-hydroxy-2-[(1E,3S)-3-hydroxyoct-1-en-1-yl]-5-oxocyclopentyl]heptanoic acid ester of carnitine. Acylcarnitines were first discovered more than 70 year ago (PMID: 13825279). It is believed that there are more than 1000 types of acylcarnitines in the human body. The general role of acylcarnitines is to transport acyl-groups (organic acids and fatty acids) from the cytoplasm into the mitochondria so that they can be broken down to produce energy. This process is known as beta-oxidation. According to a recent review [Dambrova et al. 2021, Physiological Reviews], acylcarnitines (ACs) can be classified into 9 different categories depending on the type and size of their acyl-group: 1) short-chain ACs; 2) medium-chain ACs; 3) long-chain ACs; 4) very long-chain ACs; 5) hydroxy ACs; 6) branched chain ACs; 7) unsaturated ACs; 8) dicarboxylic ACs and 9) miscellaneous ACs. Short-chain ACs have acyl-groups with two to five carbons (C2-C5), medium-chain ACs have acyl-groups with six to thirteen carbons (C6-C13), long-chain ACs have acyl-groups with fourteen to twenty once carbons (C14-C21) and very long-chain ACs have acyl groups with more than 22 carbons. 7-[(1R,2R,3R)-3-hydroxy-2-[(1E,3S)-3-hydroxyoct-1-en-1-yl]-5-oxocyclopentyl]heptanoylcarnitine is therefore classified as a long chain AC. As a long-chain acylcarnitine 7-[(1R,2R,3R)-3-hydroxy-2-[(1E,3S)-3-hydroxyoct-1-en-1-yl]-5-oxocyclopentyl]heptanoylcarnitine is generally formed through esterification with long-chain fatty acids obtained from the diet. The main function of most long-chain acylcarnitines is to ensure long chain fatty acid transport into the mitochondria (PMID: 22804748). Altered levels of long-chain acylcarnitines can serve as useful markers for inherited disorders of long-chain fatty acid metabolism. Carnitine palmitoyltransferase I (CPT I, EC:2.3.1.21) is involved in the synthesis of long-chain acylcarnitines (more than C12) on the mitochondrial outer membrane. Elevated serum/plasma levels of long-chain acylcarnitines are not only markers for incomplete FA oxidation but also are indicators of altered carbohydrate and lipid metabolism. High serum concentrations of long-chain acylcarnitines in the postprandial or fed state are markers of insulin resistance and arise from insulins inability to inhibit CPT-1-dependent fatty acid metabolism in muscles and the heart (PMID: 19073774). Increased intracellular content of long-chain acylcarnitines is thought to serve as a feedback inhibition mechanism of insulin action (PMID: 23258903). In healthy subjects, increased concentrations of insulin effectively inhibits long-chain acylcarnitine production. Several studies have also found increased levels of circulating long-chain acylcarnitines in chronic heart failure patients (PMID: 26796394). The study of acylcarnitines is an active area of research and it is likely that many novel acylcarnitines will be discovered in the coming years. It is also likely that many novel roles in health and disease will be uncovered. An excellent review of the current state of knowledge for acylcarnitines is available at [Dambrova et al. 2021, Physiological Reviews].

   

7-[(1R,2R,5S)-5-Hydroxy-2-[(1E,3S)-3-Hydroxyoct-1-en-1-yl]-3-oxocyclopentyl]heptanoylcarnitine

3-({7-[5-hydroxy-2-(3-hydroxyoct-1-en-1-yl)-3-oxocyclopentyl]heptanoyl}oxy)-4-(trimethylazaniumyl)butanoate

C27H47NO7 (497.3352352)


7-[(1R,2R,5S)-5-hydroxy-2-[(1E,3S)-3-hydroxyoct-1-en-1-yl]-3-oxocyclopentyl]heptanoylcarnitine is an acylcarnitine. More specifically, it is an 7-[(1R,2R,5S)-5-hydroxy-2-[(1E,3S)-3-hydroxyoct-1-en-1-yl]-3-oxocyclopentyl]heptanoic acid ester of carnitine. Acylcarnitines were first discovered more than 70 year ago (PMID: 13825279). It is believed that there are more than 1000 types of acylcarnitines in the human body. The general role of acylcarnitines is to transport acyl-groups (organic acids and fatty acids) from the cytoplasm into the mitochondria so that they can be broken down to produce energy. This process is known as beta-oxidation. According to a recent review [Dambrova et al. 2021, Physiological Reviews], acylcarnitines (ACs) can be classified into 9 different categories depending on the type and size of their acyl-group: 1) short-chain ACs; 2) medium-chain ACs; 3) long-chain ACs; 4) very long-chain ACs; 5) hydroxy ACs; 6) branched chain ACs; 7) unsaturated ACs; 8) dicarboxylic ACs and 9) miscellaneous ACs. Short-chain ACs have acyl-groups with two to five carbons (C2-C5), medium-chain ACs have acyl-groups with six to thirteen carbons (C6-C13), long-chain ACs have acyl-groups with fourteen to twenty once carbons (C14-C21) and very long-chain ACs have acyl groups with more than 22 carbons. 7-[(1R,2R,5S)-5-hydroxy-2-[(1E,3S)-3-hydroxyoct-1-en-1-yl]-3-oxocyclopentyl]heptanoylcarnitine is therefore classified as a long chain AC. As a long-chain acylcarnitine 7-[(1R,2R,5S)-5-hydroxy-2-[(1E,3S)-3-hydroxyoct-1-en-1-yl]-3-oxocyclopentyl]heptanoylcarnitine is generally formed through esterification with long-chain fatty acids obtained from the diet. The main function of most long-chain acylcarnitines is to ensure long chain fatty acid transport into the mitochondria (PMID: 22804748). Altered levels of long-chain acylcarnitines can serve as useful markers for inherited disorders of long-chain fatty acid metabolism. Carnitine palmitoyltransferase I (CPT I, EC:2.3.1.21) is involved in the synthesis of long-chain acylcarnitines (more than C12) on the mitochondrial outer membrane. Elevated serum/plasma levels of long-chain acylcarnitines are not only markers for incomplete FA oxidation but also are indicators of altered carbohydrate and lipid metabolism. High serum concentrations of long-chain acylcarnitines in the postprandial or fed state are markers of insulin resistance and arise from insulins inability to inhibit CPT-1-dependent fatty acid metabolism in muscles and the heart (PMID: 19073774). Increased intracellular content of long-chain acylcarnitines is thought to serve as a feedback inhibition mechanism of insulin action (PMID: 23258903). In healthy subjects, increased concentrations of insulin effectively inhibits long-chain acylcarnitine production. Several studies have also found increased levels of circulating long-chain acylcarnitines in chronic heart failure patients (PMID: 26796394). The study of acylcarnitines is an active area of research and it is likely that many novel acylcarnitines will be discovered in the coming years. It is also likely that many novel roles in health and disease will be uncovered. An excellent review of the current state of knowledge for acylcarnitines is available at [Dambrova et al. 2021, Physiological Reviews].

   

N-Nervonoyl Methionine

4-(methylsulfanyl)-2-(tetracos-15-enamido)butanoic acid

C29H55NO3S (497.39024400000005)


N-nervonoyl methionine belongs to the class of compounds known as N-acylamides. These are molecules characterized by a fatty acyl group linked to a primary amine by an amide bond. More specifically, it is a Nervonic acid amide of Methionine. It is believed that there are more than 800 types of N-acylamides in the human body. N-acylamides fall into several categories: amino acid conjugates (e.g., those acyl amides conjugated with amino acids), neurotransmitter conjugates (e.g., those acylamides conjugated with neurotransmitters), ethanolamine conjugates (e.g., those acylamides conjugated to ethanolamine), and taurine conjugates (e.g., those acyamides conjugated to taurine). N-Nervonoyl Methionine is an amino acid conjugate. N-acylamides can be classified into 9 different categories depending on the size of their acyl-group: 1) short-chain N-acylamides; 2) medium-chain N-acylamides; 3) long-chain N-acylamides; and 4) very long-chain N-acylamides; 5) hydroxy N-acylamides; 6) branched chain N-acylamides; 7) unsaturated N-acylamides; 8) dicarboxylic N-acylamides and 9) miscellaneous N-acylamides. N-Nervonoyl Methionine is therefore classified as a very long chain N-acylamide. N-acyl amides have a variety of signaling functions in physiology, including in cardiovascular activity, metabolic homeostasis, memory, cognition, pain, motor control and others (PMID: 15655504). N-acyl amides have also been shown to play a role in cell migration, inflammation and certain pathological conditions such as diabetes, cancer, neurodegenerative disease, and obesity (PMID: 23144998; PMID: 25136293; PMID: 28854168).N-acyl amides can be synthesized both endogenously and by gut microbiota (PMID: 28854168). N-acylamides can be biosynthesized via different routes, depending on the parent amine group. N-acyl ethanolamines (NAEs) are formed via the hydrolysis of an unusual phospholipid precursor, N-acyl-phosphatidylethanolamine (NAPE), by a specific phospholipase D. N-acyl amino acids are synthesized via a circulating peptidase M20 domain containing 1 (PM20D1), which can catalyze the bidirectional the condensation and hydrolysis of a variety of N-acyl amino acids. The degradation of N-acylamides is largely mediated by an enzyme called fatty acid amide hydrolase (FAAH), which catalyzes the hydrolysis of N-acylamides into fatty acids and the biogenic amines. Many N-acylamides are involved in lipid signaling system through interactions with transient receptor potential channels (TRP). TRP channel proteins interact with N-acyl amides such as N-arachidonoyl ethanolamide (Anandamide), N-arachidonoyl dopamine and others in an opportunistic fashion (PMID: 23178153). This signaling system has been shown to play a role in the physiological processes involved in inflammation (PMID: 25136293). Other N-acyl amides, including N-oleoyl-glutamine, have also been characterized as TRP channel antagonists (PMID: 29967167). N-acylamides have also been shown to have G-protein-coupled receptors (GPCRs) binding activity (PMID: 28854168). The study of N-acylamides is an active area of research and it is likely that many novel N-acylamides will be discovered in the coming years. It is also likely that many novel roles in health and disease will be uncovered for these molecules.

   
   

Diacetylveralkamine

Diacetylveralkamine

C31H47NO4 (497.3504902)


   

penasin B

penasin B

C30H56ClNO2 (497.39993460000005)


A natural product found in Penares species.

   

3,16-Diacetyl pseudosolasodine

3,16-Diacetyl pseudosolasodine

C31H47NO4 (497.3504902)


   
   
   

Ile Ile Pro Arg

(2S)-2-{[(2S)-1-[(2S,3S)-2-[(2S,3S)-2-amino-3-methylpentanamido]-3-methylpentanoyl]pyrrolidin-2-yl]formamido}-5-carbamimidamidopentanoic acid

C23H43N7O5 (497.33255080000004)


   

Ile Ile Arg Pro

(2S)-1-[(2S)-2-[(2S,3S)-2-[(2S,3S)-2-amino-3-methylpentanamido]-3-methylpentanamido]-5-carbamimidamidopentanoyl]pyrrolidine-2-carboxylic acid

C23H43N7O5 (497.33255080000004)


   

Ile Leu Pro Arg

(2S)-2-{[(2S)-1-[(2S)-2-[(2S,3S)-2-amino-3-methylpentanamido]-4-methylpentanoyl]pyrrolidin-2-yl]formamido}-5-carbamimidamidopentanoic acid

C23H43N7O5 (497.33255080000004)


   

Ile Leu Arg Pro

(2S)-1-[(2S)-2-[(2S)-2-[(2S,3S)-2-amino-3-methylpentanamido]-4-methylpentanamido]-5-carbamimidamidopentanoyl]pyrrolidine-2-carboxylic acid

C23H43N7O5 (497.33255080000004)


   

Ile Pro Ile Arg

(2S)-2-[(2S,3S)-2-{[(2S)-1-[(2S,3S)-2-amino-3-methylpentanoyl]pyrrolidin-2-yl]formamido}-3-methylpentanamido]-5-carbamimidamidopentanoic acid

C23H43N7O5 (497.33255080000004)


   

Ile Pro Leu Arg

(2S)-2-[(2S)-2-{[(2S)-1-[(2S,3S)-2-amino-3-methylpentanoyl]pyrrolidin-2-yl]formamido}-4-methylpentanamido]-5-carbamimidamidopentanoic acid

C23H43N7O5 (497.33255080000004)


   

Ile Pro Arg Ile

(2S,3S)-2-[(2S)-2-{[(2S)-1-[(2S,3S)-2-amino-3-methylpentanoyl]pyrrolidin-2-yl]formamido}-5-carbamimidamidopentanamido]-3-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

Ile Pro Arg Leu

(2S)-2-[(2S)-2-{[(2S)-1-[(2S,3S)-2-amino-3-methylpentanoyl]pyrrolidin-2-yl]formamido}-5-carbamimidamidopentanamido]-4-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

Ile Arg Ile Pro

(2S)-1-[(2S,3S)-2-[(2S)-2-[(2S,3S)-2-amino-3-methylpentanamido]-5-carbamimidamidopentanamido]-3-methylpentanoyl]pyrrolidine-2-carboxylic acid

C23H43N7O5 (497.33255080000004)


   

Ile Arg Leu Pro

(2S)-1-[(2S)-2-[(2S)-2-[(2S,3S)-2-amino-3-methylpentanamido]-5-carbamimidamidopentanamido]-4-methylpentanoyl]pyrrolidine-2-carboxylic acid

C23H43N7O5 (497.33255080000004)


   

Ile Arg Pro Ile

(2S,3S)-2-{[(2S)-1-[(2S)-2-[(2S,3S)-2-amino-3-methylpentanamido]-5-carbamimidamidopentanoyl]pyrrolidin-2-yl]formamido}-3-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

Ile Arg Pro Leu

(2S)-2-{[(2S)-1-[(2S)-2-[(2S,3S)-2-amino-3-methylpentanamido]-5-carbamimidamidopentanoyl]pyrrolidin-2-yl]formamido}-4-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

Leu Ile Pro Arg

(2S)-2-{[(2S)-1-[(2S,3S)-2-[(2S)-2-amino-4-methylpentanamido]-3-methylpentanoyl]pyrrolidin-2-yl]formamido}-5-carbamimidamidopentanoic acid

C23H43N7O5 (497.33255080000004)


   

Leu Ile Arg Pro

(2S)-1-[(2S)-2-[(2S,3S)-2-[(2S)-2-amino-4-methylpentanamido]-3-methylpentanamido]-5-carbamimidamidopentanoyl]pyrrolidine-2-carboxylic acid

C23H43N7O5 (497.33255080000004)


   

Leu Leu Pro Arg

(2S)-2-{[(2S)-1-[(2S)-2-[(2S)-2-amino-4-methylpentanamido]-4-methylpentanoyl]pyrrolidin-2-yl]formamido}-5-carbamimidamidopentanoic acid

C23H43N7O5 (497.33255080000004)


   

Leu Leu Arg Pro

(2S)-1-[(2S)-2-[(2S)-2-[(2S)-2-amino-4-methylpentanamido]-4-methylpentanamido]-5-carbamimidamidopentanoyl]pyrrolidine-2-carboxylic acid

C23H43N7O5 (497.33255080000004)


   

Leu Pro Ile Arg

(2S)-2-[(2S,3S)-2-{[(2S)-1-[(2S)-2-amino-4-methylpentanoyl]pyrrolidin-2-yl]formamido}-3-methylpentanamido]-5-carbamimidamidopentanoic acid

C23H43N7O5 (497.33255080000004)


   

Leu Pro Leu Arg

(2S)-2-[(2S)-2-{[(2S)-1-[(2S)-2-amino-4-methylpentanoyl]pyrrolidin-2-yl]formamido}-4-methylpentanamido]-5-carbamimidamidopentanoic acid

C23H43N7O5 (497.33255080000004)


   

Leu Pro Arg Ile

(2S,3S)-2-[(2S)-2-{[(2S)-1-[(2S)-2-amino-4-methylpentanoyl]pyrrolidin-2-yl]formamido}-5-carbamimidamidopentanamido]-3-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

Leu Pro Arg Leu

(2S)-2-[(2S)-2-{[(2S)-1-[(2S)-2-amino-4-methylpentanoyl]pyrrolidin-2-yl]formamido}-5-carbamimidamidopentanamido]-4-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

Leu Arg Ile Pro

(2S)-1-[(2S,3S)-2-[(2S)-2-[(2S)-2-amino-4-methylpentanamido]-5-carbamimidamidopentanamido]-3-methylpentanoyl]pyrrolidine-2-carboxylic acid

C23H43N7O5 (497.33255080000004)


   

Leu Arg Leu Pro

(2S)-1-[(2S)-2-[(2S)-2-[(2S)-2-amino-4-methylpentanamido]-5-carbamimidamidopentanamido]-4-methylpentanoyl]pyrrolidine-2-carboxylic acid

C23H43N7O5 (497.33255080000004)


   

Leu Arg Pro Ile

(2S,3S)-2-{[(2S)-1-[(2S)-2-[(2S)-2-amino-4-methylpentanamido]-5-carbamimidamidopentanoyl]pyrrolidin-2-yl]formamido}-3-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

Leu Arg Pro Leu

(2S)-2-{[(2S)-1-[(2S)-2-[(2S)-2-amino-4-methylpentanamido]-5-carbamimidamidopentanoyl]pyrrolidin-2-yl]formamido}-4-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

Pro Ile Ile Arg

(2S)-5-carbamimidamido-2-[(2S,3S)-3-methyl-2-[(2S,3S)-3-methyl-2-[(2S)-pyrrolidin-2-ylformamido]pentanamido]pentanamido]pentanoic acid

C23H43N7O5 (497.33255080000004)


   

Pro Ile Leu Arg

(2S)-5-carbamimidamido-2-[(2S)-4-methyl-2-[(2S,3S)-3-methyl-2-[(2S)-pyrrolidin-2-ylformamido]pentanamido]pentanamido]pentanoic acid

C23H43N7O5 (497.33255080000004)


   

Pro Ile Arg Ile

(2S,3S)-2-[(2S)-5-carbamimidamido-2-[(2S,3S)-3-methyl-2-[(2S)-pyrrolidin-2-ylformamido]pentanamido]pentanamido]-3-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

Pro Ile Arg Leu

(2S)-2-[(2S)-5-carbamimidamido-2-[(2S,3S)-3-methyl-2-[(2S)-pyrrolidin-2-ylformamido]pentanamido]pentanamido]-4-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

Pro Leu Ile Arg

(2S)-5-carbamimidamido-2-[(2S,3S)-3-methyl-2-[(2S)-4-methyl-2-[(2S)-pyrrolidin-2-ylformamido]pentanamido]pentanamido]pentanoic acid

C23H43N7O5 (497.33255080000004)


   

Pro Leu Leu Arg

(2S)-5-carbamimidamido-2-[(2S)-4-methyl-2-[(2S)-4-methyl-2-[(2S)-pyrrolidin-2-ylformamido]pentanamido]pentanamido]pentanoic acid

C23H43N7O5 (497.33255080000004)


   

Pro Leu Arg Ile

(2S,3S)-2-[(2S)-5-carbamimidamido-2-[(2S)-4-methyl-2-[(2S)-pyrrolidin-2-ylformamido]pentanamido]pentanamido]-3-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

Pro Leu Arg Leu

(2S)-2-[(2S)-5-carbamimidamido-2-[(2S)-4-methyl-2-[(2S)-pyrrolidin-2-ylformamido]pentanamido]pentanamido]-4-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

Pro Arg Ile Ile

(2S,3S)-2-[(2S,3S)-2-[(2S)-5-carbamimidamido-2-[(2S)-pyrrolidin-2-ylformamido]pentanamido]-3-methylpentanamido]-3-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

Pro Arg Ile Leu

(2S)-2-[(2S,3S)-2-[(2S)-5-carbamimidamido-2-[(2S)-pyrrolidin-2-ylformamido]pentanamido]-3-methylpentanamido]-4-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

Pro Arg Leu Ile

(2S,3S)-2-[(2S)-2-[(2S)-5-carbamimidamido-2-[(2S)-pyrrolidin-2-ylformamido]pentanamido]-4-methylpentanamido]-3-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

Pro Arg Leu Leu

(2S)-2-[(2S)-2-[(2S)-5-carbamimidamido-2-[(2S)-pyrrolidin-2-ylformamido]pentanamido]-4-methylpentanamido]-4-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

Arg Ile Ile Pro

(2S)-1-[(2S,3S)-2-[(2S,3S)-2-[(2S)-2-amino-5-carbamimidamidopentanamido]-3-methylpentanamido]-3-methylpentanoyl]pyrrolidine-2-carboxylic acid

C23H43N7O5 (497.33255080000004)


   

Arg Ile Leu Pro

(2S)-1-[(2S)-2-[(2S,3S)-2-[(2S)-2-amino-5-carbamimidamidopentanamido]-3-methylpentanamido]-4-methylpentanoyl]pyrrolidine-2-carboxylic acid

C23H43N7O5 (497.33255080000004)


   

Arg Ile Pro Ile

(2S,3S)-2-{[(2S)-1-[(2S,3S)-2-[(2S)-2-amino-5-carbamimidamidopentanamido]-3-methylpentanoyl]pyrrolidin-2-yl]formamido}-3-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

Arg Ile Pro Leu

(2S)-2-{[(2S)-1-[(2S,3S)-2-[(2S)-2-amino-5-carbamimidamidopentanamido]-3-methylpentanoyl]pyrrolidin-2-yl]formamido}-4-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

Arg Leu Ile Pro

(2S)-1-[(2S,3S)-2-[(2S)-2-[(2S)-2-amino-5-carbamimidamidopentanamido]-4-methylpentanamido]-3-methylpentanoyl]pyrrolidine-2-carboxylic acid

C23H43N7O5 (497.33255080000004)


   

Arg Leu Leu Pro

(2S)-1-[(2S)-2-[(2S)-2-[(2S)-2-amino-5-carbamimidamidopentanamido]-4-methylpentanamido]-4-methylpentanoyl]pyrrolidine-2-carboxylic acid

C23H43N7O5 (497.33255080000004)


   

Arg Leu Pro Ile

(2S,3S)-2-{[(2S)-1-[(2S)-2-[(2S)-2-amino-5-carbamimidamidopentanamido]-4-methylpentanoyl]pyrrolidin-2-yl]formamido}-3-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

Arg Leu Pro Leu

(2S)-2-{[(2S)-1-[(2S)-2-[(2S)-2-amino-5-carbamimidamidopentanamido]-4-methylpentanoyl]pyrrolidin-2-yl]formamido}-4-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

Arg Pro Ile Ile

(2S,3S)-2-[(2S,3S)-2-{[(2S)-1-[(2S)-2-amino-5-carbamimidamidopentanoyl]pyrrolidin-2-yl]formamido}-3-methylpentanamido]-3-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

Arg Pro Ile Leu

(2S)-2-[(2S,3S)-2-{[(2S)-1-[(2S)-2-amino-5-carbamimidamidopentanoyl]pyrrolidin-2-yl]formamido}-3-methylpentanamido]-4-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

Arg Pro Leu Ile

(2S,3S)-2-[(2S)-2-{[(2S)-1-[(2S)-2-amino-5-carbamimidamidopentanoyl]pyrrolidin-2-yl]formamido}-4-methylpentanamido]-3-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

Arg Pro Leu Leu

(2S)-2-[(2S)-2-{[(2S)-1-[(2S)-2-amino-5-carbamimidamidopentanoyl]pyrrolidin-2-yl]formamido}-4-methylpentanamido]-4-methylpentanoic acid

C23H43N7O5 (497.33255080000004)


   

LPE O-19:0;O

1-(2-methoxy-octadecanyl)-sn-glycero-3-phosphoethanolamine

C24H52NO7P (497.34812120000004)


   

Neurosporaxanthin(1-)

Neurosporaxanthin(1-)

C35H45O2- (497.341937)


   

Apo-4-lycopenoate

Apo-4-lycopenoate

C35H45O2- (497.341937)


   
   

(16Z)-14-Hydroxydocos-16-enoylcarnitine

(16Z)-14-Hydroxydocos-16-enoylcarnitine

C29H55NO5 (497.408002)


   

(5Z,8Z,13E,15S)-11,12,15-Trihydroxyicosa-5,8,13-trienoylcarnitine

(5Z,8Z,13E,15S)-11,12,15-Trihydroxyicosa-5,8,13-trienoylcarnitine

C27H47NO7 (497.3352352)


   

7-[(1R,2R,3R)-3-Hydroxy-2-[(1E,3S)-3-Hydroxyoct-1-en-1-yl]-5-oxocyclopentyl]heptanoylcarnitine

7-[(1R,2R,3R)-3-Hydroxy-2-[(1E,3S)-3-Hydroxyoct-1-en-1-yl]-5-oxocyclopentyl]heptanoylcarnitine

C27H47NO7 (497.3352352)


   

7-[(1R,2R,5S)-5-Hydroxy-2-[(1E,3S)-3-Hydroxyoct-1-en-1-yl]-3-oxocyclopentyl]heptanoylcarnitine

7-[(1R,2R,5S)-5-Hydroxy-2-[(1E,3S)-3-Hydroxyoct-1-en-1-yl]-3-oxocyclopentyl]heptanoylcarnitine

C27H47NO7 (497.3352352)


   
   
   
   
   
   
   
   
   

(6Z,9Z,12Z,15Z,18Z,21Z)-N-[(E)-1,3-dihydroxyoct-4-en-2-yl]tetracosa-6,9,12,15,18,21-hexaenamide

(6Z,9Z,12Z,15Z,18Z,21Z)-N-[(E)-1,3-dihydroxyoct-4-en-2-yl]tetracosa-6,9,12,15,18,21-hexaenamide

C32H51NO3 (497.38687360000006)


   

(4Z,7Z,10Z,13Z,16Z,19Z)-N-[(E)-1,3-dihydroxydec-4-en-2-yl]docosa-4,7,10,13,16,19-hexaenamide

(4Z,7Z,10Z,13Z,16Z,19Z)-N-[(E)-1,3-dihydroxydec-4-en-2-yl]docosa-4,7,10,13,16,19-hexaenamide

C32H51NO3 (497.38687360000006)


   

(4Z,7Z,10Z,13Z)-N-[(4E,8E,12E)-1,3-dihydroxyhexadeca-4,8,12-trien-2-yl]hexadeca-4,7,10,13-tetraenamide

(4Z,7Z,10Z,13Z)-N-[(4E,8E,12E)-1,3-dihydroxyhexadeca-4,8,12-trien-2-yl]hexadeca-4,7,10,13-tetraenamide

C32H51NO3 (497.38687360000006)


   

(6Z,9Z,12Z,15Z)-N-[(4E,8E,12E)-1,3-dihydroxytetradeca-4,8,12-trien-2-yl]octadeca-6,9,12,15-tetraenamide

(6Z,9Z,12Z,15Z)-N-[(4E,8E,12E)-1,3-dihydroxytetradeca-4,8,12-trien-2-yl]octadeca-6,9,12,15-tetraenamide

C32H51NO3 (497.38687360000006)


   

(3Z,6Z,9Z,12Z,15Z)-N-[(4E,8E)-1,3-dihydroxytetradeca-4,8-dien-2-yl]octadeca-3,6,9,12,15-pentaenamide

(3Z,6Z,9Z,12Z,15Z)-N-[(4E,8E)-1,3-dihydroxytetradeca-4,8-dien-2-yl]octadeca-3,6,9,12,15-pentaenamide

C32H51NO3 (497.38687360000006)


   

(5Z,8Z,11Z,14Z,17Z)-N-[(4E,8E)-1,3-dihydroxydodeca-4,8-dien-2-yl]icosa-5,8,11,14,17-pentaenamide

(5Z,8Z,11Z,14Z,17Z)-N-[(4E,8E)-1,3-dihydroxydodeca-4,8-dien-2-yl]icosa-5,8,11,14,17-pentaenamide

C32H51NO3 (497.38687360000006)


   

Cer 9:0;3O/20:2;(2OH)

Cer 9:0;3O/20:2;(2OH)

C29H55NO5 (497.408002)


   

Cer 13:1;3O/16:1;(2OH)

Cer 13:1;3O/16:1;(2OH)

C29H55NO5 (497.408002)


   

Cer 13:0;3O/16:2;(2OH)

Cer 13:0;3O/16:2;(2OH)

C29H55NO5 (497.408002)


   

Cer 11:0;3O/18:2;(2OH)

Cer 11:0;3O/18:2;(2OH)

C29H55NO5 (497.408002)


   

Cer 16:1;3O/13:1;(2OH)

Cer 16:1;3O/13:1;(2OH)

C29H55NO5 (497.408002)


   

Cer 17:1;3O/12:1;(2OH)

Cer 17:1;3O/12:1;(2OH)

C29H55NO5 (497.408002)


   

Cer 14:2;3O/15:0;(2OH)

Cer 14:2;3O/15:0;(2OH)

C29H55NO5 (497.408002)


   

Cer 14:1;3O/15:1;(2OH)

Cer 14:1;3O/15:1;(2OH)

C29H55NO5 (497.408002)


   

Cer 17:2;3O/12:0;(2OH)

Cer 17:2;3O/12:0;(2OH)

C29H55NO5 (497.408002)


   

Cer 15:1;3O/14:1;(2OH)

Cer 15:1;3O/14:1;(2OH)

C29H55NO5 (497.408002)


   

Cer 15:2;3O/14:0;(2OH)

Cer 15:2;3O/14:0;(2OH)

C29H55NO5 (497.408002)


   

Cer 16:2;3O/13:0;(2OH)

Cer 16:2;3O/13:0;(2OH)

C29H55NO5 (497.408002)


   
   

1-(2-methoxy-octadecanyl)-sn-glycero-3-phosphoethanolamine

1-(2-methoxy-octadecanyl)-sn-glycero-3-phosphoethanolamine

C24H52NO7P (497.34812120000004)


   
   
   
   
   
   
   

Cer 9:0;O3/20:2;O

Cer 9:0;O3/20:2;O

C29H55NO5 (497.408002)