863 resultados para Lipid Lowering
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Rampant increases in oil prices and detrimental effects of fossil fuels on the environment have been the main impetus for the development of environmentally friendly and sustainable energy sources. Amongst the many possibilities, microalgae have been proposed as a new alternative energy source to fossil fuels, as their growth is both sustainable and ecologically safe. By definition, microalgae are unicellular photosynthetic microorganisms containing chlorophyll a. These organisms are capable of producing large quantities of oils, surpassing that of traditional oil-seed crops, which can be transformed, through chemical processes, into biofuels such as biodiesel or bio-gasoline. Thus, recent research has gone into discovering high lipid producing algal strains, optimising growth media for increased lipid production and developing metabolic engineering to make microalgae a source of biofuel that is competitive to more traditional sources of biofuel and even to fossil fuel. In this context, the research reported here focused on using a mixotrophic growth mode as a way to increase lipid production for certain strains of microalgae. In addition, nitrogen starvation combined with mixotrophy was studied to analyse its effects on lipid production. Mixotrophy is the parallel usage of two trophic modes, in our case photoautotrophy and heterotrophy. Consequently, 12 algal strains were screened for mixotrophic growth, using glycerol as a carbon source. Glycerol is a waste product of the current biodiesel industry; it is a cheap and abundant carbon source present in many metabolic pathways. From this initial screening, several strains were chosen for subsequent experiments involving nitrogen starvation. Nitrogen starvation has been shown to induce lipid accumulation. The results obtained show that a mixotrophic growth mode, using glycerol as a carbon source, enhances lipid production for certain strains. Moreover, lipid enhancement was shown for nitrogen starvation combined with mixotrophic growth mode. This was dependant on time spent under nitrogen starvation and on initial concentrations of the nitrogen source.
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The changes occuring to cashew kernels during storage at two humidity levels - 80% to 20% with respect to organoleptic characteristics, protein content, carbohydrate content, oil content, iodine and peroxide values were studied. From the present study it is concluded that organoleptic characteristics of cashew kernels deteriorates with increase in humidity. Decrease in protein and carbohydrate content of stored cashew kernel is dependent on humidity. Humidity increased oxidative rancidification.
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Dept. of Marine Biology, Microbiology & Biochemistry, Cochin University of Science and Technology
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Methylparathion (MP) is an organophosphorus insecticide used world wide in agriculture due to its high activity against a broad spectrum of insect pests. The aim of the study is to understand the effect of methylparathion on the lipid peroxidation, detoxifying and antioxidant enzymes namely catalase (CAT), glutathione peroxidase (GPx), superoxide dismutase (SOD), glutathione Stransferase (GST), total reduced glutathione (GSH), lipid peroxidation (LPO), acetylcholinesterase (AChE) and disease diagnostic marker enzymes in liver, sarcoplasmic (SP) and myofirbirllar (MF) proteins in muscles, lipids and histopathlogical changes in various organs of Labeo rohita of size 75 i 6g at lethal and sublethal level of exposure. The probit analysis showed that the lethal concentration (LC 50%) for 24, 48, 72 and 96h were 15.5mg/L, 12.3mg/L, 11.4mg/L and 10.2mg/L respectively which is much higher compared to the LC50 for juvenile fish. The LPO level and GST activity increased five folds and two folds respectively on exposure to methylparathion at 10.2 mg/L and the level of the enzymes increased, on sub lethal exposure beyond 0.25mg/L. AChE activity was inhibited by 74% at a concentration of 1.8mg/L and 90% at 5.4mg/L. The disease diagnostic marker enzymes AST, ALT, ALP and LDH increased by about 2, 3 ,3 and 2 folds respectively at pesticide concentration of 10.2mg/L when compared to control. On sub lethal exposure, however the enzymes did not show any significant changes up to 0.5mg/L. At a concentration of 10.2 mg/L, there was a three fold increase in myofibrillar proteins while the increase in sarcoplasmic protein was above 1.5 fold. On sub lethal exposure, significant alteration was noticed up to 30 days up to 1mg/L of methylparathion concentration. Further exposure up to 45 days increased sarcoplasmic proteins (upto 0.5mg/L). ln the case of myofibrillar proteins, noticeable changes were observed at 1mg/L concentration right from 15th day. The cholesterol content in brain tissues increased by about 27% at methylparathion concentration of 5.4 mglL. However at 0.25mg/L sub lethal concentration, no significant alteration was observed in enzyme activity, muscle proteins, lipids and histopathology of the tissues. The results suggest that methylparathion has the potential to induce oxidative stress in fish, and that liver, muscle and brains are more sensitive organs of Labeo rohita, with poor antioxidant potentials at higher concentrations of the pesticide. The various parameters studied in this investigation can also be used as biomarkers of methylparathion exposure.
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With a seacoast of 8,1 18 km, an exclusive economic zone (EEZ) of 2 million square km, and with an area of about 30,000 square km under aquaculture, lndia produces close to six million tonnes of fish, over 4 per cent of the world fish production. While the marine waters upto 50m depth have been fully exploited, those beyond, remain unexplored. There is an ever increasing demand for fishery resources as food. The coastal fishery resources of the country are dwindling at a rapid pace and it becomes highly imperative that we search for alternate fishery resources for food. The option we have is to hunt for marine fishery resources. Studies pertaining to proximate composition, amino acid and fatty acid composition are essential to understand the nutraceutical values of these deep sea fishery resources. The present study was aimed to carry out proximate composition of deep sea fishery resources obtained during cruises onboard the FORV Sarise Sampada, to identify fishery resources which have appreciable lipid content and thereby analyse the bioactive potentials of marine lipids, to study the amino acid profile of these fishery resources, to understand the contents of SPA, MUFA and PUFA and to calculate the n3/n6 fatty acid contents. Though the presence of nutraceuticals was identified in the marine fishery resources their use as potential food resources deserve further investigation. So the study were carried out to calculate the hepatosomatic indices of sharks & chimaeras and conduct biochemical characterisation of liver oils of Apristurus indicus, Cenlrophorus scalprams, Centroselachus crepidater, Neoharriotta raleighana, and Harriotta pinnata obtained during cruises onboard the FORV Sugar Sampada.Therapeutic use of shark liver oil is evident from its use for centuries as a remedy to heal wounds and fight flu (Neil er al. 2006). Japanese seamen called it 'samedava' or "cure all". Shark liver oil is being promoted worldwide as a dietary supplement to boost the immune system, fight infections, to treat cancer and to lessen the side effects of conventional cancer treatment. These days more emphasis is laid on the nutritive benefits of shark liver oils especially on the omega 3 polyunsaturated fatty acids ( PUFAs) (Anandan er al. 2007) and alkylglycerols (AKGs) (Pugliese er al. I998) contained in them due to the high rise of inflammatory disorders such as arthritis, asthma and neurodegenerative diseases like Alzheimer’s, Parkinson’s and Schizophrenia. So the present study also evaluate the pharmacological properties with respect to analgesic, anti-inflammatory, anti pyretic and anti-ulcer effects of four different liver oils of sharks belonging to the Indian EEZ and to identify the components of oil responsible for these activities.The analgesic and anti-inflammatory activities of liver oils from Neoharriotra raleighana (NR), Centrosymnus crepidater (CC), Apristurus indicus (AI), and Centrophorus sculpratus (CS) sharks caught from the Arabian Sea and the Indian Ocean were compared. The main objectives also include determination of the cholesterol lowering effects of liver oils of Neoharriotra raleighana (NR) and Centrophorus sculpratus (CS) on the high fat diet induced dyslipidemia and to compare the impact of four isolipidemic diets, on levels of serum diagnostic marker enzymes, on lipid profile of blood and liver and antioxidant status of heart in male Albino rats. And also to study the efficacy of Centrophorus sculpratus (CS) liver oil against Complete Freund’s Adjuvant-induced arthritis and to compare the anti-inflammatory activity of this oil with a traditionally used anti-inflammatory substance gingerol (oleoresin extracted from ginger.). The results of the present study indicated that both (Centrophorus sculpratus liver oils as well as gingerol extracts proved to be effective natural remedies against CFA-induced arthritis in Albino rats.
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Recent studies with prawns indicate that their growth, metamorphosis, maturation and moulting are affected by the typo and level of lipids supplied in the diets. Despite the recognition of the importance of lipids in the diets of prawns there is no information on the essentiality and quantitative lipid requirements of Indian penaeid prawns. Therefore during the present study about 24 laboratory experiments were conducted to determine the essentiality and dietary requirements of total lipids, phoapholipida, fatty acids cholestrol, and to ascertain the nutritional value of natural lipid sources for the larvae, post-larvae tad juveniles of one of the most suitable cultivable species of panaeid prans. All the experiments were conducted in the laboratory following standard procedures, using isonitrogen and approaximately isocaloric purified diets. Changes were made in tha ingridients as required for specific requirements. For the larvae diets of particle size < 37) were fed, For the postlarvae and juveniles pellet feed was given. while data on survival and growth of larvae and pout-larvae 1-10 were recorded, data were collected on the survival, growth, food conversion ratio, protein efficiency ratio and biochemical composition at the body for post-larva 11-25 and juveniles. The influence ot fatty acid pattern of dietary lipid sources on the fatty acids profile of prawns were also studied in the case of juvenile prawns. Analysis of variance andleast significant differences test were employed to determine the significant differences between treatments in the observed parameters with the help of a newlett Packard master computer.
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Diabetes mellitus is a heterogeneous metabolic disorder characterized by hyperglycemia with disturbances in carbohydrate, protein and lipid metabolism resulting from defects in insulin secretion, insulin action or both. Currently there are 387 million people with diabetes worldwide and is expected to affect 592 million people by 2035. Insulin resistance in peripheral tissues and pancreatic beta cell dysfunction are the major challenges in the pathophysiology of diabetes. Diabetic secondary complications (like liver cirrhosis, retinopathy, microvascular and macrovascular complications) arise from persistent hyperglycemia and dyslipidemia can be disabling or even life threatening. Current medications are effective for control and management of hyperglycemia but undesirable effects, inefficiency against secondary complications and high cost are still serious issues in the present prognosis of this disorder. Hence the search for more effective and safer therapeutic agents of natural origin has been found to be highly demanding and attract attention in the present drug discovery research. The data available from Ayurveda on various medicinal plants for treatment of diabetes can efficiently yield potential new lead as antidiabetic agents. For wider acceptability and popularity of herbal remedies available in Ayurveda scientific validation by the elucidation of mechanism of action is very much essential. Modern biological techniques are available now to elucidate the biochemical basis of the effectiveness of these medicinal plants. Keeping this idea the research programme under this thesis has been planned to evaluate the molecular mechanism responsible for the antidiabetic property of Symplocos cochinchinensis, the main ingredient of Nishakathakadi Kashayam, a wellknown Ayurvedic antidiabetic preparation. A general introduction of diabetes, its pathophysiology, secondary complications and current treatment options, innovative solutions based on phytomedicine etc has been described in Chapter 1. The effect of Symplocos cochinchinensis (SC), on various in vitro biochemical targets relevant to diabetes is depicted in Chapter 2 including the preparation of plant extract. Since diabetes is a multifactorial disease, ethanolic extract of the bark of SC (SCE) and its fractions (hexane, dichloromethane, ethyl acetate and 90 % ethanol) were evaluated by in vitro methods against multiple targets such as control of postprandial hyperglycemia, insulin resistance, oxidative stress, pancreatic beta cell proliferation, inhibition of protein glycation, protein tyrosine phosphatase-1B (PTP-1B) and dipeptidyl peptidase-IV (DPPxxi IV). Among the extracts, SCE exhibited comparatively better activity like alpha glucosidase inhibition, insulin dependent glucose uptake (3 fold increase) in L6 myotubes, pancreatic beta cell regeneration in RIN-m5F and reduced triglyceride accumulation in 3T3-L1 cells, protection from hyperglycemia induced generation of reactive oxygen species in HepG2 cells with moderate antiglycation and PTP-1B inhibition. Chemical characterization by HPLC revealed the superiority of SCE over other extracts due to presence of bioactives (beta-sitosterol, phloretin 2’glucoside, oleanolic acid) in addition to minerals like magnesium, calcium, potassium, sodium, zinc and manganese. So SCE has been subjected to oral sucrose tolerance test (OGTT) to evaluate its antihyperglycemic property in mild diabetic and diabetic animal models. SCE showed significant antihyperglycemic activity in in vivo diabetic models. Chapter 3 highlights the beneficial effects of hydroethanol extract of Symplocos cochinchinensis (SCE) against hyperglycemia associated secondary complications in streptozotocin (60 mg/kg body weight) induced diabetic rat model. Proper sanction had been obtained for all the animal experiments from CSIR-CDRI institutional animal ethics committee. The experimental groups consist of normal control (NC), N + SCE 500 mg/kg bwd, diabetic control (DC), D + metformin 100 mg/kg bwd, D + SCE 250 and D + SCE 500. SCEs and metformin were administered daily for 21 days and sacrificed on day 22. Oral glucose tolerance test, plasma insulin, % HbA1c, urea, creatinine, aspartate aminotransferase (AST), alanine aminotransferase (ALT), albumin, total protein etc. were analysed. Aldose reductase (AR) activity in the eye lens was also checked. On day 21, DC rats showed significantly abnormal glucose response, HOMA-IR, % HbA1c, decreased activity of antioxidant enzymes and GSH, elevated AR activity, hepatic and renal oxidative stress markers compared to NC. DC rats also exhibited increased level of plasma urea and creatinine. Treatment with SCE protected from the deleterious alterations of biochemical parameters in a dose dependent manner including histopathological alterations in pancreas. SCE 500 exhibited significant glucose lowering effect and decreased HOMA-IR, % HbA1c, lens AR activity, and hepatic, renal oxidative stress and function markers compared to DC group. Considerable amount of liver and muscle glycogen was replenished by SCE treatment in diabetic animals. Although metformin showed better effect, the activity of SCE was very much comparable with this drug. xxii The possible molecular mechanism behind the protective property of S. cochinchinensis against the insulin resistance in peripheral tissue as well as dyslipidemia in in vivo high fructose saturated fat diet model is described in Chapter 4. Initially animal were fed a high fructose saturated fat (HFS) diet for a period of 8 weeks to develop insulin resistance and dyslipidemia. The normal diet control (ND), ND + SCE 500 mg/kg bwd, high fructose saturated fat diet control (HFS), HFS + metformin 100 mg/kg bwd, HFS + SCE 250 and HFS + SCE 500 were the experimental groups. SCEs and metformin were administered daily for the next 3 weeks and sacrificed at the end of 11th week. At the end of week 11, HFS rats showed significantly abnormal glucose and insulin tolerance, HOMA-IR, % HbA1c, adiponectin, lipid profile, liver glycolytic and gluconeogenic enzyme activities, liver and muscle triglyceride accumulation compared to ND. HFS rats also exhibited increased level of plasma inflammatory cytokines, upregulated mRNA level of gluconeogenic and lipogenic genes in liver. HFS exhibited the increased expression of GLUT-2 in liver and decreased expression of GLUT-4 in muscle and adipose. SCE treatment also preserved the architecture of pancreas, liver, and kidney tissues. Treatment with SCE reversed the alterations of biochemical parameters, improved insulin sensitivity by modifying gene expression in liver, muscle and adipose tissues. Overall results suggest that SC mediates the antidiabetic activity mainly via alpha glucosidase inhibition, improved insulin sensitivity, with antiglycation and antioxidant activities.
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Lipid Droplets dienen zur Speicherung von Neutrallipiden wie z. B. Triglyceriden und Sterolestern. Im ersten Teil der vorliegenden Arbeit wurde die Bildung dieser zellulären Fettspeicher in D. discoideum untersucht. Es konnte herausgefunden werden, dass Lipid Droplets entstehen, wenn die Zellen entweder in einer Suspension von Bakterien oder in Gegenwart von Palmitinsäure kultiviert werden. Die Bildung der Lipidtröpfchen wird dabei von einem schnelleren Zellwachstum, einem Anstieg des Triglyceridgehalts, einer Reduktion der Phagozytoserate und einer Abnahme des Zellvolumens begleitet. Wurde die Lipid Droplet-Bildung durch Kultivierung der Zellen mit Palmitinsäure angeregt, entsteht neben Triglyceriden noch eine weitere Verbindung, bei der es sich entweder um Fettsäureethylester oder Wachsester handelt. Eine weitere Eigenschaft von Zellen, die in Gegenwart der Palmitinsäure inkubiert wurden, ist die Fähigkeit exogene Fettsäuren schneller aufzunehmen, als normal kultivierte Zellen. Aus der vorliegenden Arbeit wurde gefolgert, dass dies durch eine zusätzliche Aufnahme der Fettsäuren über die Plasmamembran hervorgerufen wird. In Zellen, die ohne Fettsäuren inkubiert wurden, findet hingegen der Fettsäureimport über die Endosomen statt. Ein Protein, das nicht direkt am Prozess der Fettsäureaufnahme beteiligt ist, aber importierte Fettsäuren mit CoA aktiviert, ist die LC-FACS1. Aus Versuchen mit der Knockout-Mutante ging hervor, dass die aktivierten Fettsäuren, in Zellen, die zuvor mit Palmitinsäure oder Bakterien inkubiert wurden, in Triglyceride eingebaut werden. Der reduzierte Triglyceridgehalt im Knockout rief eine Erhöhung der Phagozytoserate hervor. Im zweiten Teil dieser Arbeit wurden die Lipidtröpfchen mit einem Saccharosegradienten aufgereinigt. Mit Hilfe der Massenspektrometrie konnten 281 Proteine in der Lipid Droplet-Fraktion identifiziert werden. Ein Teil dieser Proteine könnte durch die Interaktion der Lipidtröpfchen mit anderen Organellen in die Lipid Droplet-Fraktion gelangt sein und ist ebenso wenig Teil des Lipid Droplet-Proteoms wie die zytoplasmatischen Proteine, die eine Verunreinigung darstellen. Vier der zehn Proteine aus der Lipid Droplet-Fraktion, die in der vorliegenden Arbeit untersucht wurden, konnten nach Kultivierung in palmitinsäurehaltigem Medium tatsächlich auf der Oberfläche der Lipidtröpfchen beobachtet werden. Eines dieser Proteine ist LSD1. Es stellt das einzige PAT-Protein in D. discoideum dar und gehört der Kategorie der CPATs an. Analog zu Perilipin/PLIN1 und Adipophilin/PLIN2 könnte LSD1 eine Schutzfunktion der Lipid Droplets vor zytoplasmatischen Lipasen haben. Neben DdLSD1 konnten auch die Proteine ADH und ALI auf den Lipidtröpfchen lokalisiert werden. Bei beiden handelt es sich um 17beta-Hydroxysteroid-Dehydrogenasen - Proteine, die eine Funktion im Lipid- oder Fettsäuremetabolismus besitzen können. Das Protein SMT katalysiert die C24-Methylierung des Sterolgerüsts in D. discoideum und war nach Inkubation der Zellen mit exogenen Fettsäuren ebenfalls auf den Lipid Droplets zu beobachten.
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One of the major problems facing aquaculture is the inadequate supply of fish oil mostly used for fish feed manufacturing. The continued growth in aquaculture production cannot depend on this finite feed resources, therefore, it is imperative that cheap and readily available substitutes that do not compromise fish growth and fillet quality be found. To achieve this, a 12-week feeding trial with Heterobranchus longifilis fed diets differing in lipid source was conducted. Diets were supplemented with 6% lipid as fish oil, soybean oil, palm oil, coconut oil, groundnut oil and melon seed oil. Triplicate groups of 20 H. longifilis were fed the experimental diets two times a day to apparent satiation, over 84 days. Growth, digestibility, and muscle fatty acid profile were measured to assess diet effects. At the end of the study, survival, feed intake and hepatosomatic index were similar for fish fed experimental diets. However, weight gain, SGR and FCR of fish fed soybean oil-based diet was significantly reduced. Apparent nutrient digestibility coefficients were significantly lower in fish fed soybean, coconut and groundnut oil-based diets. Fillet and hepatic fatty acid compositions differed and reflected the fatty acid compositions of the diets. Docosahexaenoic acid (22:6n-3), 20:5n-3 and 20:4n-6 were conserved in vegetable oils-based diets fed fish possibly due to synthesis of HUFA from 18:3n-3 and 18:4n-6. Palm oil diet was the least expensive, and had the best economic conversion ratio. The use of vegetable oils in the diets had positive effect on growth and fillet composition of H. longifilis.
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Lipid droplets (LDs) are the universal storage form of fat as a reservoir of metabolic energy in animals, plants, bacteria and single celled eukaryotes. Dictyostelium LD formation was investigated in response to the addition of different nutrients to the growth medium. LDs were induced by adding exogenous cholesterol, palmitic acid (PA) as well as growth in bacterial suspension, while glucose addition fails to form LDs. Among these nutrients, PA addition is most effective to stimulate LD formation, and depletion of PA from the medium caused LD degradation. The neutral lipids incorporated into the LD-core are composed of triacylglycerol (TAG), steryl esters, and an unknown neutral lipid (UKL) species when the cells were loaded simultaneously with cholesterol and PA. In order to avoid the contamination with other cellular organelles, the LD-purification method was modified. The isolated LD fraction was analysed by mass spectrometry and 100 proteins were identified. Nineteen of these appear to be directly involved in lipid metabolism or function in regulating LD morphology. Together with a previous study, a total of 13 proteins from the LD-proteome were confirmed to localize to LDs after the induction with PA. Among the identified LD-proteins, the localization of Ldp (lipid droplet membrane protein), GPAT3 (glycerol-3-phosphate acyltransferase 3) and AGPAT3 (1-acylglycerol-3-phosphate-acyltransferase 3) were further verified by GFP-tagging at the N-termini or C-termini of the respective proteins. Fluorescence microscopy demonstrated that PA-treatment stimulated the translocation of the three proteins from the ER to LDs. In order to clarify DGAT (diacylglycerol acyltransferase) function in Dictyostelium, the localization of DGAT1, that is not present in LD-proteome, was also investigated. GFP-tagged DGAT1 localized to the ER both, in the presence and absence of PA, which is different from the previously observed localization of GFP-tagged DGAT2, which almost exclusively binds to LDs. The investigation of the cellular neutral lipid level helps to elucidate the mechanism responsible for LD-formation in Dictyostelium cells. Ldp and two short-chain dehydrogenases, ADH (alcohol dehydrogenase) and Ali (ADH-like protein), are not involved in neutral lipid biosynthesis. GPAT, AGPAT and DGAT are three transferases responsible for the three acylation steps of de novo TAG synthesis. Knock-out (KO) of AGPAT3 and DGAT2 did not affect storage-fat formation significantly, whereas cells lacking GPAT3 or DGAT1 decreased TAG and LD accumulation dramatically. Furthermore, DGAT1 is responsible for the accumulation of the unknown lipid UKL. Overexpression of DGAT2 can rescue the reduced TAG content of the DGAT1-KO mutant, but fails to restore UKL content in these cells, indicating that of DGAT1 and DGAT2 have overlapping functions in TAG synthesis, but the role in UKL formation is unique to DGAT1. Both GPAT3 and DGAT1 affect phagocytic activity. Mutation of GPAT3 increases it but a DGAT1-KO decreases phagocytosis. The double knockout of DGAT1 and 2 also impairs the ability to grow on a bacterial lawn, which again can be rescued by overexpression of DGAT2. These and other results are incorporated into a new model, which proposes that up-regulation of phagocytosis serves to replenish precursor molecules of membrane lipid synthesis, whereas phagocytosis is down-regulated when excess fatty acids are used for storage-fat formation.
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Die soziale Waldamöbe Dictystelium discoideum ist ein etablierter Modellorganismus zur Erforschung grundlegender zellbiologischer Prozesse. Innerhalb der letzten Jahre konnte dabei insbesondere das Wissen zum Lipidmetabolismus umfassend erweitert werden. In diesem Zusammenhang spielt besonders eine Enzymgruppe eine wichtige Rolle: die LC/VLC-Acyl-CoA-Synthetasen. Diese übernehmen dabei die Aufgabe Fettsäuren zu aktivieren, um sie so dem Zellmetabolismus überhaupt erst zugänglich zu machen. D. discoideum verfügt über insgesamt vier dieser Enzyme: FcsA, FcsB, FcsC und das Bubblegum-Enzym Acsbg1. Während die FcsA und FcsB bereits in vorangegangenen Arbeiten untersucht wurden, werden die FcsC und die Acsbg1 in dieser Arbeit erstmals biologisch charakterisiert. Untersuchungen zur subzellulären Lokalisation der Proteine zeigen, dass die meisten LC/VLC-Acyl-CoA-Synthetase auf Endosomen und im Cytoplasma gefunden werden können (FcsA, FcsC und Acsbg1), während die FcsB als Transmembranprotein über das ER zu den Peroxisomen transportiert wird. Die Acsbg1 akkumuliert dabei zusätzlich an der Plasmamembran. Funktionell konnte gezeigt werden, dass neben der FcsA auch die Acsbg1 an der Bereitstellung von Acyl-CoA für Triacylglyceridsynthese beteiligt ist. Dabei besitzt die FcsA die Hauptenzymaktivität und kompensiert den Verlust der Acsbg1 in acsbg1- Zellen. In fcsA-/acsbg1- Zellen dagegen kommt der Verlust der Acsbg1 durch eine zusätzliche Verringerung des TAG-Gehaltes der Doppel-KOs im Vergleich zu fcsA- Zellen zum tragen. Alle vier Enzyme beeinflussen die Phagozytose. Dabei zeigen fcsA- und fcsC- Zellen eine gesteigerte Phagozytose in Gegenwart von der gesättigten Fettsäure Palmitinsäure im Kulturmedium. Auch der knockout der Acsbg1 wirkt sich positiv auf die Phagozytoserate aus, jedoch kommt auch nur dieser zum tragen, wenn neben der Acsbg1 auch die FcsA ausgeschaltet wird. Die FcsB dagegen zeigt eine dramatische Reduktion der Partikelaufnahme in nicht Fettsäure gefütterten Zellen. Durch die Zugabe einer exogenen Fettsäure kann dieser Effekt nicht kompensiert werden. Auch der zusätzliche Verlust der FcsA-Enzymaktivität verändert dieses Verhalten in Palmitinsäure inkubierten Zellen nicht. In fcsA-/fcsB- konnte zudem ein Defekt beim Abbau von Triacylglyceriden gefunden werden. Dieser Defekt liefert erste Hinweise für ein Modell, das den Abbau von LD gespeicherten Lipiden durch Autophagozytose in D. discoideum beschreibt. Peroxisomen sind wichtige Organellen für die Detoxifikation und die Oxidation von Fettsäuren. Durch das Ausschalten der Acaa1, der Thiolase, die den letzten Schritt der β-Oxidation in Peroxisomen katalysiert, zeigte sich ein verlangsamter Triacylglycerol-Abbau sowie eine verringerte Degradation des Etherlipids UKL und von Sterolestern, was auf eine Beteiligung der Peroxisomen beim Abbau von langkettigen Fettsäuren schließen lässt. Bei dem Versuch durch das Ausschalten des pex19-Gens eine Zelllinie zu generieren, die keine Peroxisomen besitzt, wurde die Organelle überraschender Weise, wenn auch mit einer vom Wildtyp abweichenden Morphologie, weiterhin vorgefunden. Dieser Befund korrelierte mit dem Resultat, dass trotzdem das pex19-Gen erfolgreich unterbrochen wurde, dennoch eine intakte Kopie des Gens nachgewiesen werden konnte. Dementsprechend sollte die erschaffene pex19- Zelllinie als knockdown und nicht als knockout gewertet werden. Der pex19 knockdown zeigte beim Abbau von Triacylglyceriden eine ähnliche Verlangsamung wie acaa1- Zellen. Zusätzlich wurde eine Verringerung der Synthese des Etherlipids UKL beobachtet, was darauf hindeutet, dass dieses Lipid im Peroxisom gebildet wird. Auch die Phagozytose und das Wachstum auf Bakterienrasen waren im pex19 knockdown dramatisch reduziert. Durch die Überexpression von Pex19-GFP im knockdown Hintergrund konnten die physiologischen Defekte in den meisten so generierten Zelllinien ausgeglichen werden. Lipid Droplets sind Organellen, die in Eukaryoten und Prokaryoten als Speicher für Neutralfette dienen und ebenfalls als Ort der Lipidsynthese fungieren. Um diese Aufgaben erfüllen zu können, besitzen sie auf ihrer Oberfläche Proteine, die für die Regulierung dieser Prozesse notwendig sind. Durch die weiterführende Analyse von Kandidatenproteinen, die durch eine proteomische Analyse von aufgereinigten LDs identifiziert wurden, konnte für vier weitere Proteine (Plsc1, Net4, Lip5 und Nsdhl) die LD-Assoziation durch GFP-Fusionsproteine bestätigt werden. Bei der Charakterisierung von plsc1 knockouts zeigte sich eine verminderte Fähigkeit beim Wachstum auf Bakterienrasen sowie eine erhöhte Phagozytoserate in Gegenwart einer exogenen Fettsäure, was auf eine Involvierung des Proteins in die Phospholipidsynthese hindeutet. Die bisher einzige identifizierte LD-assoziierte Lipase Lip5 nimmt nur eine untergeordnete Rolle bei der Hydrolyse von Triacylglycerolen und Sterolestern ein, da in KO-Mutanten nur ein milder Defekt beim Abbau beider Substanzen beobachtet werden konnte. Die LD-Lokalisation von Net4 ist evolutionär konserviert und kann nicht nur in D. discoideum beobachtet werden, sondern auch in humanen Zellen. Welche Funktion das Protein auf der LD-Oberfläche ausübt, konnte nicht geklärt werden. Allerdings kann ein direkter Einfluss auf den TAG- und Sterolaufbau ausgeschlossen werden. LDs stehen in engem Kontakt mit anderen Organellen, die in den Lipidmetabolismus involviert sind, wie mit den Mitochondrien oder dem ER. Durch Perilipin-Hybridproteine können künstliche, stabile Verbindungen zwischen LDs und diesen Organellen hergestellt werden. Dabei zeigte Perilipin ein sehr starkes Targeting-Potenzial, durch welches es notwendig war, als zweite Hybridhälfte ein Transmembranprotein zu wählen. Die Analyse eines Hybrids, das eine dauerhafte Verbindung von LDs und dem ER herstellt, wies dabeieine Reduktion der LD-Größe auf, wobei der Gesamt-TAG-Gehalt der Zellen unbeeinflusst blieb. Durch die starke Affinität von Perilipin für die Assoziation an LDs konnten durch die Generierung von Hybriden andere Proteine an die LD-Oberfläche dirigiert werden. Auf diese Weise konnte erfolgreich die LC-Acyl-CoA-Synthetase FcsA auf das LD transplantiert werden.
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Differences in whole-body lipid metabolism between men and women are indicated by lower-body fat accumulation in women but more marked accumulation of fat in the intra-abdominal visceral fat depots of men. Circulating blood lipid concentrations also show gender-related differences. These differences are most marked in premenopausal women, in whom total cholesterol, LDL-cholesterol and triacylglycerol concentrations are lower and HDL-cholesterol concentration is higher than in men. Tendency to accumulate body fat in intra-abdominal fat stores is linked to increased risk of CVD, metabolic syndrome, diabetes and other insulin-resistant states. Differential regional regulation of adipose tissue lipolysis and lipogenesis must underlie gender-related differences in the tendency to accumulate fat in specific fat depots. However, empirical data to support current hypotheses remain limited at the present time because of the demanding and specialist nature of the methods used to study adipose tissue metabolism in human subjects. In vitro and in vivo data show greater lipolytic sensitivity of abdominal subcutaneous fat and lesser lipolytic sensitivity of femoral and gluteal subcutaneous fat in women than in men. These differences appear to be due to fewer inhibitory alpha adrenergic receptors in abdominal regions and greater a adrenergic receptors in gluteal and femoral regions in women than in men. There do not appear to be major gender-related differences in rates of fatty acid uptake (lipogenesis) in different subcutaneous adipose tissue regions. In visceral fat rates of both lipolysis and lipogenesis appear to be greater in men than in women; higher rates of lipolysis may be due to fewer alpha adrenergic receptors in this fat depot in men. Fatty acid uptake into this depot in the postprandial period is approximately 7-fold higher in men than in women. Triacylglycerol concentrations appear to be a stronger cardiovascular risk factor in women than in men, with particular implications for cardiovascular risk in diabetic women. The increased triacylglycerol concentrations observed in women taking hormone-replacement therapy (HRT) may explain the paradoxical findings of increased rates of CVD in women taking HRT that have been reported from recent primary and secondary prevention trials of HRT.
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Purpose of review Lipid rafts are potentially modifiable by diet, particularly (but not exclusively) by dietary fatty acids. This review examines the potential for dietary modification of raft structure and function in the immune system, brain and retinal tissue, the gut, and in cancer cells. Recent findings In-vitro and ex-vivo studies suggest that dietary n-3 polyunsaturated fatty acids (PUFAs) may exert immunosuppressive and anticancer effects through changes in lipid raft organization. In addition, gangliosides and cholesterol may modulate lipid raft organization in a number of tissues, and recent work has highlighted sphingolipids in membrane microdomains as potential targets for inhibition of tumor growth. The roles of fatty acids and gangliosides, especially in relation to lipid rafts, in cognitive development, age-related cognitive decline, psychiatric disorders, and Alzheimer’s disease are poorly understood and require further investigation. The roles of lipid rafts in cancer, in microbial pathogenesis, and in insulin resistance are starting to emerge, and indicate compelling evidence for the growing importance of membrane microdomains in health and disease. Summary In-vitro and animal studies show that n-3 PUFAs, cholesterol, and gangliosides modulate the structure and composition of lipid rafts, potentially influencing a wide range of biological processes, including immune function, neuronal signaling, cancer cell growth, entry of pathogens through the gut barrier, and insulin resistance in metabolic disorders. The physiological, clinical, and nutritional relevance of these observations remains to be determined.
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The interactions have been investigated of puroindoline-a (Pin-a) and mixed protein systems of Pin-a and wild-type puroindoline-b (Pin-b+) or puroindoline-b mutants (G46S mutation (Pin bH) or W44R mutation (Pin-bS)) with condensed phase monolayers of an anionic phospholipid (L-α-dipalmitoylphosphatidyl-dl-glycerol (DPPG)) at the air/water interface. The interactions of the mixed systems were studied at three different concentration ratios of Pin-a:Pin-b, namely 3:1, 1:1 and 1:3 in order to establish any synergism in relation to lipid binding properties. Surface pressure measurements revealed that Pin-a interaction with DPPG monolayers led to an equilibrium surface pressure increase of 8.7 ± 0.6 mN m-1. This was less than was measured for Pin-a:Pin-b+ (9.6 to 13.4 mN m-1), but was significantly more than was measured for Pin-a:Pin-bH (4.0 to 6.2 mN m-1) or Pin-a:Pin-bS (3.8 to 6.3 mN m-1) over the complete range of concentration ratio. Consequently, surface pressure increases were shown to correlate to endosperm hardness phenotype, with puroindolines present in hard-textured wheat varieties yielding lower equilibrium surface pressure changes. Integrated amide I peak areas from corresponding external reflectance Fourier-transform infrared (ER-FTIR) spectra, used to indicate levels of protein adsorption to the lipid monolayers, showed that differences in adsorbed amount were less significant. The data therefore suggest that Pin-b mutants having single residue substitutions within their tryptophan-rich loop that are expressed in some hard-textured wheat varieties influence the degree of penetration of Pin-a and Pin-b into anionic phospholipid films. These findings highlight the key role of the tryptophan-rich loop in puroindoline-lipid interactions.