0000000000378422

AUTHOR

Samwel Mchele Limbu

showing 4 related works from this author

Mitochondrial Fatty Acid β-Oxidation Inhibition Promotes Glucose Utilization and Protein Deposition through Energy Homeostasis Remodeling in Fish.

2020

BACKGROUND: Fish cannot use carbohydrate efficiently and instead utilize protein for energy supply, thus limiting dietary protein storage. Protein deposition is dependent on protein turnover balance, which correlates tightly with cellular energy homeostasis. Mitochondrial fatty acid β-oxidation (FAO) plays a crucial role in energy metabolism. However, the effect of remodeled energy homeostasis caused by inhibited mitochondrial FAO on protein deposition in fish has not been intensively studied. OBJECTIVES: This study aimed to identify the regulatory role of mitochondrial FAO in energy homeostasis maintenance and protein deposition by studying lipid, glucose, and protein metabolism in fish. M…

0301 basic medicineMaleProtein metabolismMedicine (miscellaneous)MitochondrionEnergy homeostasis03 medical and health scienceschemistry.chemical_compoundNile tilapia0302 clinical medicineAdjuvants ImmunologicmedicineAnimalsHomeostasisInsulinCarnitineProtein kinase ACells CulturedZebrafishNutrition and DieteticsbiologyCarnitine O-PalmitoyltransferaseChemistryFatty AcidsProtein turnoverProteinsMetabolismCichlidsDNACytochromes bbiology.organism_classificationMitochondria030104 developmental biologyGlucoseBiochemistryMutationHepatocytesNutrient Physiology Metabolism and Nutrient-Nutrient InteractionsEnergy MetabolismOxidation-Reduction030217 neurology & neurosurgerymedicine.drugMethylhydrazinesThe Journal of nutrition
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The Presence or Absence of Intestinal Microbiota Affects Lipid Deposition and Related Genes Expression in Zebrafish (Danio rerio)

2018

Understanding how intestinal microbiota alters energy homeostasis and lipid metabolism is a critical process in energy balance and health. However, the exact role of intestinal microbiota in the regulation of lipid metabolism in fish remains unclear. Here, we used two zebrafish models (germ-free and antibiotics-treated zebrafish) to identify the role of intestinal microbiota in lipid metabolism. Conventional and germ-free zebrafish larvae were fed with egg yolk. Transmission electron microscopy was used to detect the presence of lipid droplets in the intestinal epithelium. The results showed that, microbiota increased lipid accumulation in the intestinal epithelium. The mRNA sequencing tech…

0301 basic medicineMicrobiology (medical)CD36lcsh:QR1-502BiologyGut floraACSL5Microbiologylcsh:Microbiology03 medical and health sciences0302 clinical medicineLipid dropletantibioticlipid metabolismZebrafishOriginal Researchgut microbiotaLipid metabolismbiology.organism_classificationzebrafishIntestinal epitheliumCell biology030104 developmental biologyMRNA Sequencinggerm-freebiology.protein030217 neurology & neurosurgeryFrontiers in Microbiology
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Functional differences between l- and d-carnitine in metabolic regulation evaluated using a low-carnitine Nile tilapia model.

2019

Abstractl-Carnitine is essential for mitochondrialβ-oxidation and has been used as a lipid-lowering feed additive in humans and farmed animals.d-Carnitine is an optical isomer ofl-carnitine anddl-carnitine has been widely used in animal feeds. However, the functional differences betweenl- andd-carnitine are difficult to study because of the endogenousl-carnitine background. In the present study, we developed a low-carnitine Nile tilapia model by treating fish with a carnitine synthesis inhibitor, and used this model to investigate the functional differences betweenl- andd-carnitine in nutrient metabolism in fish.l- ord-carnitine (0·4 g/kg diet) was fed to the low-carnitine tilapia for 6 wee…

0301 basic medicinefood.ingredientProtein metabolismMedicine (miscellaneous)Apoptosis03 medical and health scienceschemistry.chemical_compoundNile tilapiaCarnitine palmitoyltransferase 1foodCarnitinemedicineAnimalsMetabolomicsCarnitineRNA MessengerNutrition and DieteticsbiologyProteinsTilapiaStereoisomerism04 agricultural and veterinary sciencesbiology.organism_classificationAnimal FeedCitric acid cycleMetabolic pathwayOxidative Stress030104 developmental biologyGlucosechemistryLipotoxicityBiochemistryLiverModels Animal040102 fisheries0401 agriculture forestry and fisheriesOxidation-Reductionmedicine.drugTilapiaThe British journal of nutrition
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Inhibited fatty acid β-oxidation impairs stress resistance ability in Nile tilapia (Oreochromis niloticus)

2017

Energy metabolism plays important roles in stress resistance and immunity in mammals, however, such functions have not been established in fish. In the present study, Nile tilapia (Oreochromis niloticus) was fed with mildronate, an inhibitor of mitochondrial fatty acid (FA) β-oxidation, for six weeks subsequently challenged with Aeromonas hydrophila and ammonia nitrogen exposure. Mildronate treatment reduced significantly l-carnitine concentration and mitochondrial FA β-oxidation efficiency, while it increased lipid accumulation in liver. The fish with inhibited hepatic FA catabolism had lower survival rate when exposed to Aeromonas hydrophila and ammonia nitrogen. Moreover, fish fed mildro…

0301 basic medicineNitrogenAquatic ScienceMitochondrionFish DiseasesRandom Allocation03 medical and health sciencesNile tilapiaImmune systemAmmoniaStress PhysiologicalCarnitinemedicineAnimalsEnvironmental ChemistryCarnitinechemistry.chemical_classificationbiologyCatabolismFatty AcidsFatty acidCichlids04 agricultural and veterinary sciencesGeneral Medicinebiology.organism_classificationAnimal FeedAeromonas hydrophilaDietMitochondriaOreochromisAeromonas hydrophila030104 developmental biologychemistryBiochemistryDietary Supplements040102 fisheries0401 agriculture forestry and fisheriesGram-Negative Bacterial InfectionsOxidation-ReductionMethylhydrazinesmedicine.drugFish & Shellfish Immunology
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