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1.
Genes (Basel) ; 12(10)2021 09 24.
Article in English | MEDLINE | ID: mdl-34680888

ABSTRACT

Cyperus esculentus is widely representing one of the important oil crops around the world, which provides valuable resources of edible tubers called tiger nut. The chemical composition and high ability to produce fats emphasize the role of tiger nut in promoting oil crop productivity. However, the underlying molecular mechanism of the production and accumulation of lipids in tiger nut development still remains unclear. Here, we conducted comprehensive transcriptomics and lipidomics analyses at different developmental stages of tuber in Cyperus esculentus. Lipidomic analyses confirmed that the accumulation of lipids including glycolipids, phospholipids, and glycerides were significantly enriched during tuber development from early to mature stage. The proportion of phosphatidylcholines (PC) declined during all stages and phosphatidyl ethanolamine (PE) was significantly declined in early and middle stages. These findings implied that PC is actively involved in triacylglycerol (TAG) biosynthesis during the tubers development, whereas PE may participate in TAG metabolism during early and middle stages. Comparative transcriptomics analyses indicated several genomic and metabolic pathways associated with lipid metabolism during tuber development in tiger nut. The Pearson correlation analysis showed that TAG synthesis in different developmental stages was attributed to 37 candidate transcripts including CePAH1. The up-regulation of diacylglycerol (DAG) and oil content in yeast, resulted from the inducible expression of exogenous CePAH1 confirmed the central role of this candidate gene in lipid metabolism. Our results demonstrated the foundation of an integrative metabolic model for understanding the molecular mechanism of tuber development in tiger nut, in which lipid biosynthesis plays a central role.


Subject(s)
Cyperus/genetics , Lipids/biosynthesis , Plant Tubers/genetics , Transcriptome/genetics , Cyperus/growth & development , Gene Expression Regulation, Plant/genetics , Lipid Metabolism/genetics , Lipidomics , Lipids/genetics , Lipogenesis/genetics , Plant Development/genetics , Plant Oils/metabolism , Plant Tubers/growth & development
2.
Sci Rep ; 11(1): 11924, 2021 06 07.
Article in English | MEDLINE | ID: mdl-34099835

ABSTRACT

The sebaceous gland (SG) is involved in different inflammatory, infectious and neoplastic processes of the skin and can be related to specific diseases, e.g., diabetes mellitus. Sometimes, the histological diagnosis requires complementary tests due to the ability of diseases to mimic other tumors. We evaluated the sebaceous gland density in Non-obese diabetic mice to analyze the N-acetylcystein effects and swimming exercise treatment in sebaceous glands healing, using specific staining in histochemistry and immunohistochemistry reactions in the identification of the lipid expression in the sebaceous gland. We investigated the intracytoplasmic lipid expression and analysis of gland density from SG in dorsal skin samples from the Non-obese diabetic (NOD mice) and diabetic animals submitted to antioxidant treatment and physical exercise. For histological analysis of the sebaceous glands, specific staining in histochemistry with sudan black and immunohistochemistry reaction with adipophilin were used in the evaluation. Statistical analysis showed significant proximity between the values of the control group and the diabetic group submitted to the swimming exercise (DS group) and similar values between the untreated diabetic group (UD group) and diabetic group treated with the antioxidant N-acetylcysteine (DNa group), which did not prevent possible differences where p < 0.01. Adipophilin (ADPH) immunohistochemistry permitted more intense lipid staining in SGs, the preservation of the SG in the control group, and a morphological deformed appearance in the UD and DNa groups. However, weak morphological recovery of the SG was observed in the DS-Na group, being more expressive in the DS group. In conclusion, the groups submitted to physical exercises showed better results in the recovery of the analyzed tissue, even being in the physiological conditions caused by spontaneous diabetes.


Subject(s)
Acetylcysteine/pharmacology , Diabetes Mellitus, Type 1/metabolism , Lipids/biosynthesis , Sebaceous Glands/drug effects , Swimming/physiology , Animals , Antioxidants/pharmacology , Blood Glucose/metabolism , Diabetes Mellitus, Type 1/blood , Female , Humans , Immunohistochemistry , Mice, Inbred BALB C , Mice, Inbred NOD , Perilipin-2/metabolism , Sebaceous Glands/anatomy & histology , Sebaceous Glands/metabolism , Skin/drug effects , Skin/metabolism
3.
Plant J ; 107(1): 77-99, 2021 07.
Article in English | MEDLINE | ID: mdl-33860574

ABSTRACT

Wounding during mechanical harvesting and post-harvest handling results in tuber desiccation and provides an entry point for pathogens resulting in substantial post​-harvest crop losses. Poor wound healing is a major culprit of these losses. Wound tissue in potato (Solanum tuberosum) tubers, and all higher plants, is composed of a large proportion of suberin that is deposited in a specialized tissue called the wound periderm. However, the genetic regulatory pathway controlling wound-induced suberization remains unknown. Here, we implicate two potato transcription factors, StMYB102 (PGSC0003DMG400011250) and StMYB74 (PGSC0003DMG400022399), as regulators of wound suberin biosynthesis and deposition. Using targeted metabolomics and transcript profiling from the wound healing tissues of two commercial potato cultivars, as well as heterologous expression, we provide evidence for the molecular-genetic basis of the differential wound suberization capacities of different potato cultivars. Our results suggest that (i) the export of suberin from the cytosol to the apoplast and ligno-suberin deposition may be limiting factors for wound suberization, (ii) StMYB74 and StMYB102 are important regulators of the wound suberization process in tubers, and (iii) polymorphisms in StMYB102 may influence cultivar-specific wound suberization capacity. These results represent an important step in understanding the regulated biosynthesis and deposition of wound suberin and provide a practical foundation for targeted breeding approaches aimed at improving potato tuber storage life.


Subject(s)
Lipids/biosynthesis , Plant Proteins/genetics , Plant Tubers/physiology , Solanum tuberosum/physiology , Gene Expression Regulation, Plant , Lipids/genetics , Phenols/metabolism , Plant Cells , Plant Tubers/genetics , Polymorphism, Genetic , Solanum tuberosum/cytology , Solanum tuberosum/genetics , Transcription Factors/genetics , Waxes/metabolism
4.
Genes Genomics ; 43(8): 885-896, 2021 08.
Article in English | MEDLINE | ID: mdl-33884569

ABSTRACT

BACKGROUND: Paeonia ostii seeds were identified as novel sources of edible plant oil with a high proportion of α-linolenic acid, a type of n-3 fatty acid with many health benefits. Due to the unreliability of seed oil content and quality, it is necessary to discover the mechanism underlying lipid biosynthesis in Paeonia ostii seeds. OBJECTIVES: This study aimed to identify the key genes involved in lipid biosynthesis in Paeonia ostii seeds by analyzing the relationship among the seed characteristics and the expression patterns of lipid genes in Paeonia ostii during seed development. METHODS: Preliminary research on Paeonia ostii seed development was carried out from 10 days after pollination until maturity, focusing on phenology, oil content and lipid profiles. In addition, we investigated the spatiotemporal expression of 36 lipid biosynthetic genes in Paeonia ostii by using quantitative real-time PCR. RESULTS: The results suggested that the development of Paeonia ostii seeds from pollination to maturity could be divided into three periods. The 36 lipid genes showed various spatiotemporal expression patterns and five gene groups with distinct temporal patterns during seed development were identified by clustering analysis of expression data. Furthermore, the relationships between gene expression and lipid/fatty acid accumulation and some candidate key lipid genes were discussed. CONCLUSIONS: This study provided the global patterns of fatty acid and lipid biosynthesis-related gene expression, which are critical to understanding the molecular basis of lipid biosynthesis and identifying the lipid accumulation rate-limiting genes during seed development.


Subject(s)
Fatty Acids/genetics , Lipids/biosynthesis , Paeonia/genetics , Seeds/genetics , Gene Expression Regulation, Plant/genetics , Lipids/genetics , Lipogenesis/genetics , Paeonia/growth & development , Seeds/growth & development , Transcriptome/genetics
5.
Nat Chem Biol ; 17(6): 703-710, 2021 06.
Article in English | MEDLINE | ID: mdl-33723432

ABSTRACT

The protein complexes of the mitochondrial electron transport chain exist in isolation and in higher order assemblies termed supercomplexes (SCs) or respirasomes (SC I+III2+IV). The association of complexes I, III and IV into the respirasome is regulated by unknown mechanisms. Here, we designed a nanoluciferase complementation reporter for complex III and IV proximity to determine in vivo respirasome levels. In a chemical screen, we found that inhibitors of the de novo pyrimidine synthesis enzyme dihydroorotate dehydrogenase (DHODH) potently increased respirasome assembly and activity. By-passing DHODH inhibition via uridine supplementation decreases SC assembly by altering mitochondrial phospholipid composition, specifically elevated peroxisomal-derived ether phospholipids. Cell growth rates upon DHODH inhibition depend on ether lipid synthesis and SC assembly. These data reveal that nucleotide pools signal to peroxisomes to modulate synthesis and transport of ether phospholipids to mitochondria for SC assembly, which are necessary for optimal cell growth in conditions of nucleotide limitation.


Subject(s)
Electron Transport , Nucleotides/chemistry , Peroxisomes/chemistry , Phospholipids/chemistry , Dihydroorotate Dehydrogenase , Electron Transport/genetics , Electron Transport Complex III/genetics , Electron Transport Complex IV/genetics , High-Throughput Nucleotide Sequencing , Humans , Lipids/biosynthesis , Metabolomics , Mitochondria/metabolism , Molecular Structure , Oxidoreductases Acting on CH-CH Group Donors/chemistry , Oxygen Consumption , Phospholipid Ethers , Uridine/metabolism
6.
Sci Rep ; 11(1): 6779, 2021 03 24.
Article in English | MEDLINE | ID: mdl-33762646

ABSTRACT

Supplementing cultivation media with exogenous carbon sources enhances biomass and lipid production in microalgae. Utilization of renewable organic carbon from agricultural residues can potentially reduce the cost of algae cultivation, while enhancing sustainability. In the present investigation a medium was developed from sweet sorghum bagasse for cultivation of Chlorella under mixotrophic conditions. Using response surface methodology, the optimal values of critical process parameters were determined, namely inoculum cell density (O.D.750) of 0.786, SSB hydrolysate content of the medium 25% v/v, and zero medium salinity, to achieve maximum lipid productivity of 120 mg/L/d. Enhanced biomass (3.44 g/L) and lipid content (40% of dry cell weight) were observed when the alga was cultivated in SSB hydrolysate under mixotrophic conditions compared to heterotrophic and photoautotrophic conditions. A time course investigation revealed distinct physiological responses in terms of cellular growth and biochemical composition of C. vulgaris cultivated in the various trophic modes. The determined carbohydrate and lipid profiles indicate that sugar addition to the cultivation medium boosts neutral lipid synthesis compared to structural lipids, suggesting that carbon flux is channeled towards triacylglycerol synthesis in the cells. Furthermore, the fatty acid profile of lipids extracted from mixotrophically grown cultures contained more saturated and monosaturated fatty acids, which are suitable for biofuel manufacturing. Scale-up studies in a photobioreactor using SSB hydrolysate achieved a biomass concentration of 2.83 g/L consisting of 34% lipids and 26% carbohydrates. These results confirmed that SSB hydrolysate is a promising feedstock for mixotrophic cultivation of Chlorella and synthesis of algal bioproducts and biofuels.


Subject(s)
Biomass , Chlorella vulgaris/physiology , Lipids/biosynthesis , Microalgae/growth & development , Plant Physiological Phenomena , Eating , Hydrogen-Ion Concentration , Photosynthesis , Pigments, Biological/biosynthesis , Sugars/metabolism
7.
J Appl Microbiol ; 130(5): 1592-1601, 2021 May.
Article in English | MEDLINE | ID: mdl-32975836

ABSTRACT

AIMS: This research aimed to determine the potential use of wastes from the potato chips industry as a carbon source to develop an economical culture medium for the production of biomass, lipids and arachidonic acid (ARA) by Mortierella alpina. METHODS AND RESULTS: A synthetic culture medium was optimized using a Plackett-Burman and central composite rotatable design, and used as a base to evaluate and characterize the potential use of wastes from the potato chips industry as carbon sources for the production of biomass, lipids and ARA by M. alpina. The waste was selected among other solid and liquid hydrolysed residues/by-products, and local low-cost alternatives for nitrogen sources were also evaluated. After 6 days of fermentation, the biomass concentration reached 20 g l-1 with 40% of total lipids, and a 35% ARA content in the lipids fraction. Savings in production were calculated using a sensitivity analysis for the alternative culture medium in different scenarios. CONCLUSIONS: This study showed a 7% savings in culture media expenses in the production of ARA-enriched biomass of M. alpina, compared to the conventional synthetic culture medium, when waste from the potato chips industry was used as an alternative source of carbon and macro/microelements, supplemented with a low-cost yeast extract alternative. SIGNIFICANCE AND IMPACT OF THE STUDY: The demonstration of the use of potato chips wastes as a low-cost carbon source for the biomass, lipids and ARA production, suggesting an eco-friendly alternative for the use of agri-food wastes for valuable metabolites production.


Subject(s)
Arachidonic Acid/biosynthesis , Mortierella/metabolism , Refuse Disposal/methods , Solanum tuberosum , Arachidonic Acid/economics , Biomass , Carbon/metabolism , Culture Media/economics , Culture Media/metabolism , Fermentation , Lipids/biosynthesis , Lipids/economics , Mortierella/growth & development , Nitrogen/metabolism , Solanum tuberosum/chemistry
8.
J Cancer Res Ther ; 16(6): 1294-1301, 2020.
Article in English | MEDLINE | ID: mdl-33342787

ABSTRACT

BACKGROUND: Reprogrammed energy metabolism is considered a hallmark of cancer and is proposed as an important target for therapy. Uncontrolled and infinite cell proliferation needs efficient energy sources. To meet the demands of cancer cells lipid metabolism is activated. Citrullus colocynthis is a traditional medicinal plant known for its anticancer and hypolipidemic effects. AIMS: Aim of the current study was to assess the effect of C. colocynthis leaves on regulation of lipid metabolism in MCF-7, a human breast cancer cell line. METHODS: Methanolic extract of leaves and its fractions in increasing polarity-based solvents (n-hexane, chloroform, ethyl acetate and n-butanol) were prepared and analyzed for the presence of secondary metabolites in each fraction. Bioassays and apoptosis genes expression analysis was conducted to evaluate the anticancer and cytotoxic effect of breast cancer cells treated with extract and its fractions, separately. Lipid quantification and gene expression regulation of genes involve in lipid metabolism was performed to evaluate regulation of lipid metabolism. RESULTS: Results showed a significant anticancer activity of methanolic extract of C. colocynthis and two of its fractions prepared with chloroform and ethyl acetate. Quantification of lipids depicted significant increase in cholesterol and increase in triglycerides of treated cells compared to control untreated cells. Expression regulation of genes further confirmed the lipid regulation through significant down regulation of genes involve in lipid metabolism (FASN, HMGCLL1, ACSL5 and ELOVL2). CONCLUSION: The present study concludes that C. colocynthis holds strong anticancer potential through regulation of lipid metabolism and with further studies can be proposed for novel therapeutic approaches.


Subject(s)
Breast Neoplasms/drug therapy , Breast Neoplasms/metabolism , Citrullus colocynthis/chemistry , Lipids/biosynthesis , Plant Extracts/pharmacology , Breast Neoplasms/genetics , Cell Line, Tumor , Cell Survival/drug effects , Female , Humans , Hypolipidemic Agents/pharmacology , Lipid Metabolism/drug effects , Plant Leaves/chemistry
9.
Compr Rev Food Sci Food Saf ; 19(2): 759-800, 2020 03.
Article in English | MEDLINE | ID: mdl-33325163

ABSTRACT

Structured lipids (SLs) refer to a new type of functional lipids obtained by chemically, enzymatically, or genetically modifying the composition and/or distribution of fatty acids in the glycerol backbone. Due to the unique physicochemical characteristics and health benefits of SLs (for example, calorie reduction, immune function improvement, and reduction in serum triacylglycerols), there is increasing interest in the research and application of novel SLs in the food industry. The chemical structures and molecular architectures of SLs define mainly their physicochemical properties and nutritional values, which are also affected by the processing conditions. In this regard, this holistic review provides coverage of the latest developments and applications of SLs in terms of synthesis strategies, physicochemical properties, health aspects, and potential food applications. Enzymatic synthesis of SLs particularly with immobilized lipases is presented with a short introduction to the genetic engineering approach. Some physical features such as solid fat content, crystallization and melting behavior, rheology and interfacial properties, as well as oxidative stability are discussed as influenced by chemical structures and processing conditions. Health-related considerations of SLs including their metabolic characteristics, biopolymer-based lipid digestion modulation, and oleogelation of liquid oils are also explored. Finally, potential food applications of SLs are shortly introduced. Major challenges and future trends in the industrial production of SLs, physicochemical properties, and digestion behavior of SLs in complex food systems, as well as further exploration of SL-based oleogels and their food application are also discussed.


Subject(s)
Lipids/biosynthesis , Lipids/chemical synthesis , Digestion , Fatty Acids/chemistry , Humans , Lipid Metabolism , Lipids/chemistry , Molecular Structure , Nutritive Value , Organic Chemicals
10.
Microb Cell Fact ; 19(1): 204, 2020 Nov 10.
Article in English | MEDLINE | ID: mdl-33167962

ABSTRACT

BACKGROUND: Lipids from oleaginous yeasts emerged as a sustainable alternative to vegetable oils and animal fat to produce biodiesel, the biodegradable and environmentally friendly counterpart of petro-diesel fuel. To develop economically viable microbial processes, the use of residual feedstocks as growth and production substrates is required. RESULTS: In this work we investigated sugar beet pulp (SBP) and molasses, the main residues of sugar beet processing, as sustainable substrates for the growth and lipid accumulation by the oleaginous yeast Lipomyces starkeyi. We observed that in hydrolysed SBP the yeast cultures reached a limited biomass, cellular lipid content, lipid production and yield (2.5 g/L, 19.2%, 0.5 g/L and 0.08 g/g, respectively). To increase the initial sugar availability, cells were grown in SBP blended with molasses. Under batch cultivation, the cellular lipid content was more than doubled (47.2%) in the presence of 6% molasses. Under pulsed-feeding cultivation, final biomass, cellular lipid content, lipid production and lipid yield were further improved, reaching respectively 20.5 g/L, 49.2%, 9.7 g/L and 0.178 g/g. Finally, we observed that SBP can be used instead of ammonium sulphate to fulfil yeasts nitrogen requirement in molasses-based media for microbial oil production. CONCLUSIONS: This study demonstrates for the first time that SBP and molasses can be blended to create a feedstock for the sustainable production of lipids by L. starkeyi. The data obtained pave the way to further improve lipid production by designing a fed-batch process in bioreactor.


Subject(s)
Beta vulgaris/metabolism , Biofuels , Lipids/biosynthesis , Lipomyces/metabolism , Biomass , Bioreactors , Culture Media/chemistry , Hydrolysis , Lipomyces/growth & development , Molasses
11.
Chem Asian J ; 15(24): 4307-4320, 2020 Dec 14.
Article in English | MEDLINE | ID: mdl-33108039

ABSTRACT

The potential of Scenedesmus dimorphus microalgae for CO2 biofixation and lipid biosynthesis for bioenergy applications was evaluated in this study. Batch experiments were conducted using synthetic tertiary municipal wastewater samples at several nitrogen to phosphorus (NP) ratios (1 : 1 to 8 : 1) and CO2 concentrations (∼0%, 2%, 4%, and 6% CO2 in supplied air). Scenedesmus dimorphus was cultivated for 25 days and the growth is highly dependent on the CO2 concentration and the NP ratio. An NP ratio of 2 : 1 produces a biomass yield of 733 mg/L when the microalga culture was supplied with air enriched with 2% CO2 . The maximum CO2 biofixation rate of 49.6 mg L-1 d-1 is at an NP ratio of 8 : 1 with 4% CO2 . A colorimetric technique depending on sulpho-phospho-vanillin (SPV) was utilized for the determination of the intracellular lipid content. The highest lipid content of 31.6% as the dry weight of the biomass is at an NP ratio of 1 : 1 and 6% CO2 . These results indicate that supplementation of suitable CO2 with favorable NP ratio has a considerable effect on lipid accumulation in the microalgae Scenedesmus dimorphus biomass.


Subject(s)
Biofuels , Carbon Dioxide/metabolism , Lipids/biosynthesis , Nitrogen/chemistry , Phosphorus/chemistry , Scenedesmus/metabolism , Benzaldehydes/chemistry , Biomass , Carbon Dioxide/chemistry , Colorimetry , Lipids/analysis , Scenedesmus/growth & development , Waste Disposal, Fluid
12.
J Agric Food Chem ; 68(41): 11488-11502, 2020 Oct 14.
Article in English | MEDLINE | ID: mdl-32955875

ABSTRACT

Nannochloropsis oceanica represents a preferred oleaginous alga for producing lipids. Here we found that phosphorus deprivation (PD) caused a severe decrease in protein and a considerable increase in lipids including triacylglycerol (TAG), yet it had little effect on the carbohydrate level and biomass production of N. oceanica. The combinatorial analysis by integrating physiological, biochemical, and transcriptomic data unraveled the molecular mechanisms underlying PD-induced lipid accumulation. Albeit attenuating the Calvin-Benson cycle, PD stimulated the C4-like pathway to maintain CO2 fixation for biomass production. PD attenuated nitrogen utilization and enhanced protein catabolism thus leading to protein decrease, from which the carbon was likely salvaged into the stimulated tricarboxylic acid cycle for supplying lipid synthesis with carbon precursors. The impairment of TAG catabolism by downregulating certain lipases rather than the stimulation of TAG assembly pathways contributed to PD-boosted TAG increase. These findings provide novel insights into PD-induced lipogenesis without compromising biomass production by N. oceanica.


Subject(s)
Lipids/biosynthesis , Phosphorus/metabolism , Stramenopiles/metabolism , Biomass , Carbon Dioxide/metabolism , Microalgae/chemistry , Microalgae/growth & development , Microalgae/metabolism , Phosphorus/chemistry , Photosynthesis , Proteins/metabolism , Stramenopiles/chemistry , Stramenopiles/growth & development , Triglycerides/biosynthesis
13.
Microb Cell Fact ; 19(1): 179, 2020 Sep 09.
Article in English | MEDLINE | ID: mdl-32907579

ABSTRACT

BACKGROUND: Sugars and triglycerides are common carbon sources for microorganisms. Nonetheless, a systematic comparative interpretation of metabolic changes upon vegetable oil or glucose as sole carbon source is still lacking. Selected fungi that can grow in acidic mineral salt media (MSM) with vegetable oil had been identified recently. Hence, this study aimed to investigate the overall metabolite changes of an omnipotent fungus and to reveal changes at central carbon metabolism corresponding to both carbon sources. RESULTS: Targeted and non-targeted metabolomics for both polar and semi-polar metabolites of Phialemonium curvatum AWO2 (DSM 23903) cultivated in MSM with palm oil (MSM-P) or glucose (MSM-G) as carbon sources were obtained. Targeted metabolomics on central carbon metabolism of tricarboxylic acid (TCA) cycle and glyoxylate cycle were analysed using LC-MS/MS-TripleQ and GC-MS, while untargeted metabolite profiling was performed using LC-MS/MS-QTOF followed by multivariate analysis. Targeted metabolomics analysis showed that glyoxylate pathway and TCA cycle were recruited at central carbon metabolism for triglyceride and glucose catabolism, respectively. Significant differences in organic acids concentration of about 4- to 8-fold were observed for citric acid, succinic acid, malic acid, and oxaloacetic acid. Correlation of organic acids concentration and key enzymes involved in the central carbon metabolism was further determined by enzymatic assays. On the other hand, the untargeted profiling revealed seven metabolites undergoing significant changes between MSM-P and MSM-G cultures. CONCLUSIONS: Overall, this study has provided insights on the understanding on the effect of triglycerides and sugar as carbon source in fungi global metabolic pathway, which might become important for future optimization of carbon flux engineering in fungi to improve organic acids production when vegetable oil is applied as the sole carbon source.


Subject(s)
Acids/metabolism , Ascomycota/growth & development , Ascomycota/metabolism , Glucose/metabolism , Metabolome , Organic Chemicals/metabolism , Palm Oil/metabolism , Lipids/biosynthesis , Metabolic Networks and Pathways
14.
J Dairy Sci ; 103(11): 10195-10206, 2020 Nov.
Article in English | MEDLINE | ID: mdl-32921467

ABSTRACT

The economic value of milk fat and its responsiveness to management strategies provides strong interest in maximizing milk fat production by minimizing occurrence of biohydrogenation-induced milk fat depression (BH-MFD) and maximizing de novo synthesized fatty acids (FA). Tools that allow a timely diagnosis of BH-MFD would improve nutritional management. Specific milk FA or FA categories correlate to milk fat concentration and are of interest for diagnosing the cause of changes in milk fat concentration. The objective of the current study was to characterize the relationship between milk fat concentration and trans-10 C18:1, a proxy for BH-MFD, and FA <16 carbons that originate solely from de novo lipogenesis using a meta-analysis approach that used data from the literature and unpublished Penn State experiments. Prior to the meta-analysis, the effect of FA methylation method on milk FA profile was tested to determine potential bias between papers. There was no difference between sodium methoxide, acid, and acid-base methylation methods on trans-10 C18:1 concentration, but acid methods resulted in loss of short-chain FA. The relationship between trans-10 C18:1 and milk fat percentage was investigated using a 2-component model, where one component described the fraction unresponsive to BH-MFD and the other described a responsive fraction that is exponentially related to trans-10 C18:1. The 2 fractions where characterized utilizing a Bayesian hierarchical model accounting for between-study variability. The model was defined by the function f(x, θ1, θ2, θ3) = θ1 + θ2exp(θ3), where the unresponsive θ1 fraction was 2.15 ± 0.09%, the responsive θ2 fraction was 1.55 ± 0.08%, and the exponential term θ3 was -0.503 ± 0.07 (posterior mean ± posterior standard deviation from the Bayesian hierarchical model). A Lin's concordance correlation coefficient of 0.67 suggested good agreement between observations and predictions from the Bayesian hierarchical model, computed only with the model's mean population parameters. There was a linear relationship between milk fat concentration and FA <16 C as a percentage of total FA (intercept = 2.68 ± 0.237 and slope = 0.043 ± 0.011; coefficient of determination = 0.31). The relationship between milk FA <16 C and milk fat concentration is weaker than what has been published, likely because multiple factors can reduce de novo FA without reducing milk fat and the broad range of diets present in the literature.


Subject(s)
Fats/analysis , Fatty Acids/analysis , Lipids/biosynthesis , Milk/chemistry , Animals , Bayes Theorem , Cattle , Diet , Dietary Supplements/analysis , Female , Glycolipids , Glycoproteins , Hydrogenation , Lactation , Lipid Droplets
15.
J Microbiol Biotechnol ; 30(8): 1235-1243, 2020 Aug 28.
Article in English | MEDLINE | ID: mdl-32855379

ABSTRACT

The use of microalgal biomass as feedstock for biofuels has been discussed for decades as it provides a sustainable approach to producing fuels for the future. Nonetheless, its feasibility has not been established yet and various aspects of biomass applications such as CO2 biofixation should also be explored. Therefore, in this study, the CO2 biofixation and lipid/carbohydrate production potential of Chlorella sp. ABC-001 were examined under various nitrogen concentrations. The highest biomass productivity and CO2 biofixation rate of 0.422 g/l/d and 0.683 g/l/d, respectively, were achieved under a nitrogen-rich condition (15 mM nitrate). Carbohydrate content was generally proportional to initial nitrate concentration and showed the highest value of 41.5% with 15 mM. However, lipid content showed an inverse relationship with nitrogen supplementation and showed the highest value of 47.4% with 2.5 mM. In consideration as feedstock for biofuels (bioethanol, biodiesel, and biogas), the sum of carbohydrate and lipid contents were examined and the highest value of 79.6% was achieved under low nitrogen condition (2.5 mM). For lipid-based biofuel production, low nitrogen supplementation should be pursued. However, considering the lower feasibility of biodiesel, pursuing CO2 biofixation and the production of carbohydrate-based fuels under nitrogenrich condition might be more rational. Thus, nitrogen status as a cultivation strategy must be optimized according to the objective, and this was confirmed with the promising alga Chlorella sp. ABC-001.


Subject(s)
Biofuels , Carbon Cycle/physiology , Carbon Dioxide/metabolism , Chlorella/metabolism , Dietary Supplements , Microalgae/metabolism , Nitrogen/metabolism , Biomass , Carbohydrate Metabolism , Carbohydrates/analysis , Chlorella/growth & development , Lipids/biosynthesis , Microalgae/growth & development
16.
PLoS One ; 15(6): e0234870, 2020.
Article in English | MEDLINE | ID: mdl-32569317

ABSTRACT

Mucoromycota fungi possess a versatile metabolism and can utilize various substrates for production of industrially important products, such as lipids, chitin/chitosan, polyphosphates, pigments, alcohols and organic acids. However, as far as commercialisation is concerned, establishing industrial biotechnological processes based on Mucoromycota fungi is still challenging due to the high production costs compared to the final product value. Therefore, the development of co-production concept is highly desired since more than one valuable product could be produced at the time and the process has a potentially higher viability. To develop such biotechnological strategy, we applied a high throughput approach consisting of micro-titre cultivation and FTIR spectroscopy. This approach allows single-step biochemical fingerprinting of either fungal biomass or growth media without tedious extraction of metabolites. The influence of two types of nitrogen sources and different levels of inorganic phosphorus on the co-production of lipids, chitin/chitosan and polyphosphates for nine different oleaginous Mucoromycota fungi was evaluated. FTIR analysis of biochemical composition of Mucoromycota fungi and biomass yield showed that variation in inorganic phosphorus had higher effect when inorganic nitrogen source-ammonium sulphate-was used. It was observed that: (1) Umbelopsis vinacea reached almost double biomass yield compared to other strains when yeast extract was used as nitrogen source while phosphorus limitation had little effect on the biomass yield; (2) Mucor circinelloides, Rhizopus stolonifer, Amylomyces rouxii, Absidia glauca and Lichtheimia corymbifera overproduced chitin/chitosan under the low pH caused by the limitation of inorganic phosphorus; (3) Mucor circinelloides, Amylomyces rouxii, Rhizopus stolonifer and Absidia glauca were able to store polyphosphates in addition to lipids when high concentration of inorganic phosphorus was used; (4) the biomass and lipid yield of high-value lipid producers Mortierella alpina and Mortierella hyalina were significantly increased when high concentrations of inorganic phosphorus were combined with ammonium sulphate, while the same amount of inorganic phosphorus combined with yeast extract showed negative impact on the growth and lipid accumulation. FTIR spectroscopy revealed the co-production potential of several oleaginous Mucoromycota fungi forming lipids, chitin/chitosan and polyphosphates in a single cultivation process.


Subject(s)
Biotechnology/methods , Cell Culture Techniques/methods , Chitin/biosynthesis , Fungi , Lipids/biosynthesis , Polyphosphates/metabolism , Spectroscopy, Fourier Transform Infrared/methods , Culture Media , Fungi/growth & development , Fungi/metabolism , Nitrogen/metabolism , Phosphorus/metabolism
17.
Ecol Food Nutr ; 59(5): 552-574, 2020.
Article in English | MEDLINE | ID: mdl-32364411

ABSTRACT

Child malnutrition is a global public health challenge. A protein malnutrition (PM) model in young mice was established in this study. The efficacy of an ocean-based protein (APP) extracted from by-catch fish as compared to casein and soy on restoring body weight, bone growth, and immunity of PM mice was evaluated. Results show that supplementation of APP increases body weight, lean muscle mass, bone area, mineral content and density. APP supplementation increases spleen, thymus weight, and interlukin-6 production. In conclusion, APP is an alternative source of protein to effectively restore body weight, bone growth and immune function of PM mice.


Subject(s)
Bone Development , Dietary Proteins/administration & dosage , Dietary Supplements , Fish Proteins/administration & dosage , Protein Deficiency/diet therapy , Weight Gain , Animals , Blood Glucose/analysis , Body Composition , Bone Density , Child , Child Nutrition Disorders/prevention & control , Humans , Immune System/physiology , Lipids/biosynthesis , Male , Mice , Powders , Protein Deficiency/immunology
18.
Appl Microbiol Biotechnol ; 104(10): 4617-4628, 2020 May.
Article in English | MEDLINE | ID: mdl-32236680

ABSTRACT

Orange peel waste (OPW), the primary byproduct of the juice extraction process, is annually generated in massive amounts (21 Mton), and its aqueous extraction in biorefining operations yields a liquid fraction, referred to as orange peel extract (OPE). Although OPE contains significant amounts of easily assimilable carbohydrates, such as fructose, glucose, and sucrose, no investigations have been conducted yet to assess its possible use in biodiesel production by oleaginous yeasts. Consequently, the objective of the present study was to assess whether OPE might act as the basis of a liquid medium for microbial lipid production. A screening conducted with 18 strains of oleaginous yeasts in shaken flask on the OPE-based medium showed that Rhodosporidium toruloides NRRL 1091 and Cryptococcus laurentii UCD 68-201 gave the best results in terms of lipid production (5.8 and 4.5 g L-1, respectively) and accumulation (77 and 47% on a dry matter basis, respectively). The subsequent scale transfer of the process to a 3-L STR operated in batch mode halved the time required to reach the lipid peak with the ensuing increase in volumetric productivities in R. toruloides NRRL 1091 (3646 mg L-1 day-1) and C. laurentii UCD 68-201 (2970.7 mg L-1 day-1). The biodiesel yields from the lipids of the former and the latter strain were 36.9 and 31.9%, respectively. Based on multivariate analysis of fatty acid methyl ester compositions, the lipids from the former and the latter strain were highly resembling those of Jatropha and palm oils, two commonly used feedstocks for biodiesel manufacturing.


Subject(s)
Biofuels/analysis , Citrus sinensis/chemistry , Fruit/chemistry , Fungi/drug effects , Industrial Waste , Lipids/biosynthesis , Basidiomycota/drug effects , Culture Media/chemistry , Culture Media/pharmacology , Fungi/metabolism , Lipids/analysis , Plant Extracts , Rhodotorula/drug effects
19.
J Nutr ; 150(4): 704-711, 2020 04 01.
Article in English | MEDLINE | ID: mdl-32060554

ABSTRACT

BACKGROUND: The association between high selenium (Se) intake and metabolic disorders such as type 2 diabetes has raised great concern, but the underlying mechanism remains unclear. OBJECTIVE: Through targeted metabolomics analysis, we examined the liver sugar and acylcarnitine metabolism responses to supranutritional selenomethionine (SeMet) supplementation in pigs. METHODS: Thirty-six castrated male pigs (Duroc-Landrace-Yorkshire, 62.0 ± 3.3 kg) were fed SeMet adequate (Se-A, 0.25 mg Se/kg) or SeMet supranutritional (Se-S, 2.5 mg Se/kg) diets for 60 d. The Se concentration, biochemical, gene expression, enzyme activity, and energy-targeted metabolite profiles were analyzed. RESULTS: The Se-S group had greater fasting serum concentrations of glucose (1.9-fold), insulin (1.4-fold), and free fatty acids (FFAs,1.3-fold) relative to the Se-A group (P < 0.05). The liver total Se concentration was 4.2-fold that of the Se-A group in the Se-S group (P < 0.05), but expression of most selenoprotein genes and selenoenzyme activity did not differ between the 2 groups. Seven of 27 targeted sugar metabolites and 4 of 21 acylcarnitine metabolites significantly changed in response to high SeMet (P < 0.05). High SeMet supplementation significantly upregulated phosphoenolpyruvate carboxy kinase (PEPCK) activity by 64.4% and decreased hexokinase and succinate dehydrogenase (SDH) activity by 46.5-56.7% (P < 0.05). The relative contents of glucose, dihydroxyacetone phosphate, α-ketoglutarate, fumarate, malate, erythrose-4-phosphate, and sedoheptulose-7-phosphate in the Se-S group were 21.1-360% greater than those in the Se-A group (P < 0.05). The expression of fatty acid synthase (FASN) and the relative contents of carnitine, hexanoyl-carnitine, decanoyl-carnitine, and tetradecanoyl-carnitine in the Se-S group were 35-97% higher than those in the Se-A group (P < 0.05). CONCLUSIONS: Dietary high SeMet-induced hyperglycemia and hyperinsulinemia were associated with suppression of sugar metabolism and elevation of lipid synthesis in pig livers. Our research provides novel insights into high SeMet intake-induced type 2 diabetes.


Subject(s)
Carnitine/analogs & derivatives , Diet , Liver/metabolism , Selenomethionine/administration & dosage , Sugars/metabolism , Animals , Carnitine/metabolism , Diabetes Mellitus, Type 2/chemically induced , Dietary Supplements , Dose-Response Relationship, Drug , Homeostasis/drug effects , Hyperglycemia/chemically induced , Hyperinsulinism/chemically induced , Lipids/biosynthesis , Liver/chemistry , Liver/enzymology , Male , Metabolomics/methods , Models, Animal , Oxidation-Reduction , RNA, Messenger/analysis , Selenium/administration & dosage , Selenium/adverse effects , Selenium/analysis , Selenomethionine/adverse effects , Selenoproteins/genetics , Sus scrofa
20.
J Plant Physiol ; 246-247: 153092, 2020.
Article in English | MEDLINE | ID: mdl-32065919

ABSTRACT

The mechanisms regulating, and modulating potato wound-healing processes are of great importance in reducing tuber infections, reducing shrinkage and maintaining quality and nutritional value for growers and consumers. Wound-induced changes in tuber polyamine metabolism have been linked to the modulation of wound healing (WH) and in possibly providing the crucial amount of H2O2 required for suberization processes. In this investigation we determined the effect of inhibition of specific steps within the pathway of polyamine metabolism on polyamine content and the initial accumulation of suberin polyphenolics (SPP) during WH. The accumulation of SPP represents a critical part of the beginning or inchoate phase of tuber WH during closing-layer formation because it serves as a barrier to bacterial infection and is a requisite for the accumulation of suberin polyaliphatics which provide the barrier to fungal infection. Results showed that the inhibitor treatments that caused changes in polyamine content generally did not influence wound-induced accumulation of SPP. Such lack of correlation was found for inhibitors involved in metabolism and oxidation of putrescine (arginine decarboxylase, ornithine decarboxylase, and diamine oxidase). However, accumulation of SPP was dramatically reduced by treatment with guazatine, a potent inhibitor of polyamine oxidase (PAO), and methylglyoxal-bis(guanylhydrazone), a putative inhibitor of S-adenosylmethione decarboxylase which may also cross-react to inhibit PAO. The mode of action of these inhibitors is presumed to be blockage of essential H2O2 production within the WH cell wall. These results are of great importance in understanding the mechanisms modulating WH and ultimately controlling related infections and associated postharvest losses.


Subject(s)
Diamines/antagonists & inhibitors , Lipids/biosynthesis , Plant Proteins/metabolism , Plant Tubers/metabolism , Polyamines/antagonists & inhibitors , Solanum tuberosum/metabolism , Carboxy-Lyases/metabolism , Diamines/metabolism , Guanidines/metabolism , Mitoguazone/metabolism , Oxidation-Reduction , Oxidoreductases Acting on CH-NH Group Donors/metabolism , Polyamines/metabolism , Putrescine/metabolism , Solanum tuberosum/enzymology , Polyamine Oxidase
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