Lmfa07050031

Lmfa07050031 is a lipid of Fatty Acyls (FA) class. The involved functions are known as Pigment and Polymerization. The related lipids are Propionate.

Cross Reference

Introduction

To understand associated biological information of Lmfa07050031, 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 Lmfa07050031?

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 Lmfa07050031

MeSH term MeSH ID Detail
Diabetes Mellitus D003920 90 associated lipids
Adenocarcinoma D000230 166 associated lipids
Reperfusion Injury D015427 65 associated lipids
Diabetes Mellitus, Type 2 D003924 87 associated lipids
Fatty Liver D005234 48 associated lipids
Ketosis D007662 13 associated lipids
Body Weight D001835 333 associated lipids
Heart Failure D006333 36 associated lipids
Prostatic Neoplasms D011471 126 associated lipids
Hypothyroidism D007037 32 associated lipids
Weight Gain D015430 101 associated lipids
Hypoglycemia D007003 13 associated lipids
Alcoholism D000437 27 associated lipids
Starvation D013217 47 associated lipids
Hypertension D006973 115 associated lipids
Cytomegalovirus Infections D003586 7 associated lipids
Protein-Energy Malnutrition D011502 9 associated lipids
Cachexia D002100 21 associated lipids
Hyperinsulinism D006946 27 associated lipids
Placental Insufficiency D010927 6 associated lipids
Medulloblastoma D008527 22 associated lipids
Insulin Resistance D007333 99 associated lipids
Weight Loss D015431 56 associated lipids
Myocardial Stunning D017682 10 associated lipids
Cleft Lip D002971 8 associated lipids
Mitochondrial Myopathies D017240 13 associated lipids
Mercury Poisoning D008630 4 associated lipids
Per page 10 20 50 | Total 27

PubChem Associated disorders and diseases

What pathways are associated with Lmfa07050031

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 Lmfa07050031?

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

What functions are associated with Lmfa07050031?


Related references are published most in these journals:

Function Cross reference Weighted score Related literatures

What lipids are associated with Lmfa07050031?

Related references are published most in these journals:

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

What genes are associated with Lmfa07050031?

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

What common seen animal models are associated with Lmfa07050031?

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

NCBI Entrez Crosslinks

All references with Lmfa07050031

Download all related citations
Per page 10 20 50 100 | Total 787
Authors Title Published Journal PubMed Link
Cherbuy C et al. Oleate metabolism in pig enterocytes is characterized by an increased oxidation rate in the presence of a high esterification rate within two days after birth. 2012 J. Nutr. pmid:22223579
Power GW and Newsholme EA Dietary fatty acids influence the activity and metabolic control of mitochondrial carnitine palmitoyltransferase I in rat heart and skeletal muscle. 1997 J. Nutr. pmid:9349840
Surendran S et al. Malonyl CoA decarboxylase deficiency: C to T transition in intron 2 of the MCD gene. 2001 J. Neurosci. Res. pmid:11550227
Blázquez C et al. Role of carnitine palmitoyltransferase I in the control of ketogenesis in primary cultures of rat astrocytes. 1998 J. Neurochem. pmid:9751193
Blázquez C et al. The stimulation of ketogenesis by cannabinoids in cultured astrocytes defines carnitine palmitoyltransferase I as a new ceramide-activated enzyme. 1999 J. Neurochem. pmid:10098887
Reamy AA and Wolfgang MJ Carnitine palmitoyltransferase-1c gain-of-function in the brain results in postnatal microencephaly. 2011 J. Neurochem. pmid:21592121
Tang GL et al. Polyketide chain skipping mechanism in the biosynthesis of the hybrid nonribosomal peptide-polyketide antitumor antibiotic leinamycin in Streptomyces atroolivaceus S-140. 2006 J. Nat. Prod. pmid:16562841
Holness MJ et al. Impact of protein restriction on the regulation of cardiac carnitine palmitoyltransferase by malonyl-CoA. 1998 J. Mol. Cell. Cardiol. pmid:9710806
McMillin JB et al. Evidence for malonyl-CoA-sensitive carnitine acyl-CoA transferase activity in sarcoplasmic reticulum of canine heart. 1992 J. Mol. Cell. Cardiol. pmid:1625348
Hudson EK et al. Insulin-associated changes in carnitine palmitoyltransferase in cultured neonatal rat cardiac myocytes. 1995 J. Mol. Cell. Cardiol. pmid:7760380
Dyck JR and Lopaschuk GD Malonyl CoA control of fatty acid oxidation in the ischemic heart. 2002 J. Mol. Cell. Cardiol. pmid:12392882
Hickson-Bick DL et al. Palmitate-mediated alterations in the fatty acid metabolism of rat neonatal cardiac myocytes. 2000 J. Mol. Cell. Cardiol. pmid:10731449
Lauzier B et al. Post-translational modifications, a key process in CD36 function: lessons from the spontaneously hypertensive rat heart. 2011 J. Mol. Cell. Cardiol. pmid:21510957
Qiu X et al. Refined structures of beta-ketoacyl-acyl carrier protein synthase III. 2001 J. Mol. Biol. pmid:11243824
Cheng JF et al. Synthesis and structure-activity relationship of small-molecule malonyl coenzyme A decarboxylase inhibitors. 2006 J. Med. Chem. pmid:16509570
Gu YG et al. Synthesis and structure-activity relationships of N-{3-[2-(4-alkoxyphenoxy)thiazol-5-yl]-1- methylprop-2-ynyl}carboxy derivatives as selective acetyl-CoA carboxylase 2 inhibitors. 2006 J. Med. Chem. pmid:16789734
Brown NF et al. Molecular characterization of L-CPT I deficiency in six patients: insights into function of the native enzyme. 2001 J. Lipid Res. pmid:11441142
Gonzalez-Rios MC et al. Lipid metabolism in biotin-responsive multiple carboxylase deficiency. 1985 J. Inherit. Metab. Dis. pmid:2878112
Meng X et al. Increasing fatty acid production in E. coli by simulating the lipid accumulation of oleaginous microorganisms. 2011 J. Ind. Microbiol. Biotechnol. pmid:20972897
Derdak Z et al. Inhibition of p53 attenuates steatosis and liver injury in a mouse model of non-alcoholic fatty liver disease. 2013 J. Hepatol. pmid:23211317
Wheeler PR et al. Enzymes for biosynthesis de novo and elongation of fatty acids in mycobacteria grown in host cells: is Mycobacterium leprae competent in fatty acid biosynthesis? 1990 J. Gen. Microbiol. pmid:2191079
Chen Q et al. Fatty acid synthase inhibitors separated from oiltea camellia by high-speed counter-current chromatography. 2011 Jun-Jul J. Food Sci. pmid:22417422
Verhoeyen ME et al. Increasing antioxidant levels in tomatoes through modification of the flavonoid biosynthetic pathway. 2002 J. Exp. Bot. pmid:12324533
Richards JG et al. Substrate utilization during graded aerobic exercise in rainbow trout. 2002 J. Exp. Biol. pmid:12089210
Mukherjee S and Katiyar SS Inactivation of enoyl-CoA reductase in pigeon liver fatty acid synthetase by pyridoxal 5'-phosphate: evidence for the presence of one lysine residue at the active site. 1998 J. Enzym. Inhib. pmid:9629539
Badaoui B et al. Goat acetyl-coenzyme A carboxylase alpha: molecular characterization, polymorphism, and association with milk traits. 2007 J. Dairy Sci. pmid:17235183
Jensen MD Fatty acid oxidation in human skeletal muscle. 2002 J. Clin. Invest. pmid:12464664
Rasmussen BB et al. Malonyl coenzyme A and the regulation of functional carnitine palmitoyltransferase-1 activity and fat oxidation in human skeletal muscle. 2002 J. Clin. Invest. pmid:12464674
Foster DW Malonyl-CoA: the regulator of fatty acid synthesis and oxidation. 2012 J. Clin. Invest. pmid:22833869
Boyd ME et al. In vitro reversal of the fasting state of liver metabolism in the rat. Reevaluation of the roles of insulin and glucose. 1981 J. Clin. Invest. pmid:7019243
BÃ¥venholm PN et al. Insulin resistance in type 2 diabetes: association with truncal obesity, impaired fitness, and atypical malonyl coenzyme A regulation. 2003 J. Clin. Endocrinol. Metab. pmid:12519834
Gao L et al. Simultaneous quantification of malonyl-CoA and several other short-chain acyl-CoAs in animal tissues by ion-pairing reversed-phase HPLC/MS. 2007 J. Chromatogr. B Analyt. Technol. Biomed. Life Sci. pmid:17442642
Peluso G et al. Differential carnitine/acylcarnitine translocase expression defines distinct metabolic signatures in skeletal muscle cells. 2005 J. Cell. Physiol. pmid:15515015
Pender C et al. Expression of genes regulating malonyl-CoA in human skeletal muscle. 2006 J. Cell. Biochem. pmid:16721829
Jung SY et al. Reduced expression of FASN through SREBP-1 down-regulation is responsible for hypoxic cell death in HepG2 cells. 2012 J. Cell. Biochem. pmid:22786746
Kennedy JA et al. Effect of perhexiline and oxfenicine on myocardial function and metabolism during low-flow ischemia/reperfusion in the isolated rat heart. 2000 J. Cardiovasc. Pharmacol. pmid:11117381
Keung W et al. Intracerebroventricular leptin administration differentially alters cardiac energy metabolism in mice fed a low-fat and high-fat diet. 2011 J. Cardiovasc. Pharmacol. pmid:20980918
Rathnasingh C et al. Production of 3-hydroxypropionic acid via malonyl-CoA pathway using recombinant Escherichia coli strains. 2012 J. Biotechnol. pmid:21723339
McGarry JD et al. Hepatic malonyl-CoA levels of fed, fasted and diabetic rats as measured using a simple radioisotopic assay. 1978 J. Biol. Chem. pmid:711752
Hoppel CL et al. The malonyl-CoA-sensitive form of carnitine palmitoyltransferase is not localized exclusively in the outer membrane of rat liver mitochondria. 1998 J. Biol. Chem. pmid:9722587
Shi J et al. A single amino acid change (substitution of glutamate 3 with alanine) in the N-terminal region of rat liver carnitine palmitoyltransferase I abolishes malonyl-CoA inhibition and high affinity binding. 1999 J. Biol. Chem. pmid:10092622
Cook GA et al. Yonetani-Theorell analysis of hepatic carnitine palmitoyltransferase-I inhibition indicates two distinct inhibitory binding sites. 1994 J. Biol. Chem. pmid:8132614
Nicot C et al. Pig liver carnitine palmitoyltransferase. Chimera studies show that both the N- and C-terminal regions of the enzyme are important for the unusual high malonyl-CoA sensitivity. 2002 J. Biol. Chem. pmid:11790778
Morillas M et al. Structural model of a malonyl-CoA-binding site of carnitine octanoyltransferase and carnitine palmitoyltransferase I: mutational analysis of a malonyl-CoA affinity domain. 2002 J. Biol. Chem. pmid:11790793
Reszko AE et al. Peroxisomal fatty acid oxidation is a substantial source of the acetyl moiety of malonyl-CoA in rat heart. 2004 J. Biol. Chem. pmid:14982940
Pan Y et al. The extreme C terminus of rat liver carnitine palmitoyltransferase I is not involved in malonyl-CoA sensitivity but in initial protein folding. 2002 J. Biol. Chem. pmid:12351641
Gande R et al. Acyl-CoA carboxylases (accD2 and accD3), together with a unique polyketide synthase (Cg-pks), are key to mycolic acid biosynthesis in Corynebacterianeae such as Corynebacterium glutamicum and Mycobacterium tuberculosis. 2004 J. Biol. Chem. pmid:15308633
Kerner J et al. Phosphorylation of rat liver mitochondrial carnitine palmitoyltransferase-I: effect on the kinetic properties of the enzyme. 2004 J. Biol. Chem. pmid:15247243
Onay-Besikci A et al. gAd-globular head domain of adiponectin increases fatty acid oxidation in newborn rabbit hearts. 2004 J. Biol. Chem. pmid:15269215
Rangan VS and Smith S Alteration of the substrate specificity of the malonyl-CoA/acetyl-CoA:acyl carrier protein S-acyltransferase domain of the multifunctional fatty acid synthase by mutation of a single arginine residue. 1997 J. Biol. Chem. pmid:9115261