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1.
iScience ; 27(6): 109737, 2024 Jun 21.
Article in English | MEDLINE | ID: mdl-38799564

ABSTRACT

Long-chain acyl-CoA synthetase family 4 (ACSL4) metabolizes long-chain polyunsaturated fatty acids (PUFAs), enriching cell membranes with phospholipids susceptible to peroxidation and drive ferroptosis. The role of ACSL4 and ferroptosis upon endoplasmic-reticulum (ER)-stress-induced acute kidney injury (AKI) is unknown. We used lipidomic, molecular, and cellular biology approaches along with a mouse model of AKI induced by ER stress to investigate the role of ACSL4 regulation in membrane lipidome remodeling in the injured tubular epithelium. Tubular epithelial cells (TECs) activate ACSL4 in response to STAT3 signaling. In this context, TEC membrane lipidome is remodeled toward PUFA-enriched triglycerides instead of PUFA-bearing phospholipids. TECs expressing ACSL4 in this setting are not vulnerable to ferroptosis. Thus, ACSL4 activity in TECs is driven by STAT3 signaling, but ACSL4 alone is not enough to sensitize ferroptosis, highlighting the significance of the biological context associated with the study model.

2.
bioRxiv ; 2024 Mar 21.
Article in English | MEDLINE | ID: mdl-38562716

ABSTRACT

Cancer cell fate has been widely ascribed to mutational changes within protein-coding genes associated with tumor suppressors and oncogenes. In contrast, the mechanisms through which the biophysical properties of membrane lipids influence cancer cell survival, dedifferentiation and metastasis have received little scrutiny. Here, we report that cancer cells endowed with a high metastatic ability and cancer stem cell-like traits employ ether lipids to maintain low membrane tension and high membrane fluidity. Using genetic approaches and lipid reconstitution assays, we show that these ether lipid-regulated biophysical properties permit non-clathrin-mediated iron endocytosis via CD44, leading directly to significant increases in intracellular redox-active iron and enhanced ferroptosis susceptibility. Using a combination of in vitro three-dimensional microvascular network systems and in vivo animal models, we show that loss of ether lipids also strongly attenuates extravasation, metastatic burden and cancer stemness. These findings illuminate a mechanism whereby ether lipids in carcinoma cells serve as key regulators of malignant progression while conferring a unique vulnerability that can be exploited for therapeutic intervention.

3.
Elife ; 122023 05 16.
Article in English | MEDLINE | ID: mdl-37190854

ABSTRACT

Dietary compounds can affect the development of inflammatory responses at distant sites. However, the mechanisms involved remain incompletely understood. Here, we addressed the influence on allergic responses of dietary agonists of aryl hydrocarbon receptor (AhR). In cutaneous papain-induced allergy, we found that lack of dietary AhR ligands exacerbates allergic responses. This phenomenon was tissue-specific as airway allergy was unaffected by the diet. In addition, lack of dietary AhR ligands worsened asthma-like allergy in a model of 'atopic march.' Mice deprived of dietary AhR ligands displayed impaired Langerhans cell migration, leading to exaggerated T cell responses. Mechanistically, dietary AhR ligands regulated the inflammatory profile of epidermal cells, without affecting barrier function. In particular, we evidenced TGF-ß hyperproduction in the skin of mice deprived of dietary AhR ligands, explaining Langerhans cell retention. Our work identifies an essential role for homeostatic activation of AhR by dietary ligands in the dampening of cutaneous allergic responses and uncovers the importance of the gut-skin axis in the development of allergic diseases.


Subject(s)
Dermatitis, Atopic , Diet , Hypersensitivity , Receptors, Aryl Hydrocarbon , Animals , Mice , Langerhans Cells , Ligands , Receptors, Aryl Hydrocarbon/agonists , Skin
4.
JCI Insight ; 7(18)2022 09 22.
Article in English | MEDLINE | ID: mdl-35998043

ABSTRACT

Energy metabolism failure in proximal tubule cells (PTCs) is a hallmark of chronic kidney injury. We combined transcriptomic, metabolomic, and lipidomic approaches in experimental models and patient cohorts to investigate the molecular basis of the progression to chronic kidney allograft injury initiated by ischemia/reperfusion injury (IRI). The urinary metabolome of kidney transplant recipients with chronic allograft injury and who experienced severe IRI was substantially enriched with long chain fatty acids (FAs). We identified a renal FA-related gene signature with low levels of carnitine palmitoyltransferase 2 (Cpt2) and acyl-CoA synthetase medium chain family member 5 (Acsm5) and high levels of acyl-CoA synthetase long chain family member 4 and 5 (Acsl4 and Acsl5) associated with IRI, transition to chronic injury, and established chronic kidney disease in mouse models and kidney transplant recipients. The findings were consistent with the presence of Cpt2-Acsl4+Acsl5+Acsm5- PTCs failing to recover from IRI as identified by single-nucleus RNA-Seq. In vitro experiments indicated that ER stress contributed to CPT2 repression, which, in turn, promoted lipids' accumulation, drove profibrogenic epithelial phenotypic changes, and activated the unfolded protein response. ER stress through CPT2 inhibition and lipid accumulation engaged an auto-amplification loop leading to lipotoxicity and self-sustained cellular stress. Thus, IRI imprints a persistent FA metabolism disturbance in the proximal tubule, sustaining the progression to chronic kidney allograft injury.


Subject(s)
Carnitine O-Palmitoyltransferase , Kidney , Animals , Carnitine O-Palmitoyltransferase/genetics , Coenzyme A , Fatty Acids/metabolism , Kidney/metabolism , Ligases , Mice
5.
EMBO Mol Med ; 13(10): e13742, 2021 10 07.
Article in English | MEDLINE | ID: mdl-34411438

ABSTRACT

Batten diseases (BDs) are a group of lysosomal storage disorders characterized by seizure, visual loss, and cognitive and motor deterioration. We discovered increased levels of globotriaosylceramide (Gb3) in cellular and murine models of CLN3 and CLN7 diseases and used fluorescent-conjugated bacterial toxins to label Gb3 to develop a cell-based high content imaging (HCI) screening assay for the repurposing of FDA-approved compounds able to reduce this accumulation within BD cells. We found that tamoxifen reduced the lysosomal accumulation of Gb3 in CLN3 and CLN7 cell models, including neuronal progenitor cells (NPCs) from CLN7 patient-derived induced pluripotent stem cells (iPSC). Here, tamoxifen exerts its action through a mechanism that involves activation of the transcription factor EB (TFEB), a master gene of lysosomal function and autophagy. In vivo administration of tamoxifen to the CLN7Δex2 mouse model reduced the accumulation of Gb3 and SCMAS, decreased neuroinflammation, and improved motor coordination. These data strongly suggest that tamoxifen may be a suitable drug to treat some types of Batten disease.


Subject(s)
Neuronal Ceroid-Lipofuscinoses , Animals , Drug Repositioning , Humans , Lysosomes , Membrane Glycoproteins/genetics , Mice , Molecular Chaperones/genetics , Neuronal Ceroid-Lipofuscinoses/drug therapy , Phenotype , Tamoxifen/pharmacology
6.
EBioMedicine ; 70: 103504, 2021 Aug.
Article in English | MEDLINE | ID: mdl-34311325

ABSTRACT

BACKGROUND: Localized stress and cell death in chronic inflammatory diseases may release tissue-specific lipids into the circulation causing the blood plasma lipidome to reflect the type of inflammation. However, deep lipid profiles of major chronic inflammatory diseases have not been compared. METHODS: Plasma lipidomes of patients suffering from two etiologically distinct chronic inflammatory diseases, atherosclerosis-related vascular disease, including cardiovascular (CVD) and ischemic stroke (IS), and systemic lupus erythematosus (SLE), were screened by a top-down shotgun mass spectrometry-based analysis without liquid chromatographic separation and compared to each other and to age-matched controls. Lipid profiling of 596 lipids was performed on a cohort of 427 individuals. Machine learning classifiers based on the plasma lipidomes were used to distinguish the two chronic inflammatory diseases from each other and from the controls. FINDINGS: Analysis of the lipidomes enabled separation of the studied chronic inflammatory diseases from controls based on independent validation test set classification performance (CVD vs control - Sensitivity: 0.94, Specificity: 0.88; IS vs control - Sensitivity: 1.0, Specificity: 1.0; SLE vs control - Sensitivity: 1, Specificity: 0.93) and from each other (SLE vs CVD ‒ Sensitivity: 0.91, Specificity: 1; IS vs SLE - Sensitivity: 1, Specificity: 0.82). Preliminary linear discriminant analysis plots using all data clearly separated the clinical groups from each other and from the controls, and partially separated CVD severities, as classified into five clinical groups. Dysregulated lipids are partially but not fully counterbalanced by statin treatment. INTERPRETATION: Dysregulation of the plasma lipidome is characteristic of chronic inflammatory diseases. Lipid profiling accurately identifies the diseases and in the case of CVD also identifies sub-classes. FUNDING: Full list of funding sources at the end of the manuscript.


Subject(s)
Atherosclerosis/blood , Ischemic Stroke/blood , Lipidomics/methods , Lipids/blood , Lupus Erythematosus, Systemic/blood , Adult , Aged , Aged, 80 and over , Biomarkers/blood , Female , Humans , Male , Mass Spectrometry/methods , Middle Aged
7.
Aging Cell ; 19(10): e13214, 2020 10.
Article in English | MEDLINE | ID: mdl-32898317

ABSTRACT

The dauer larva of Caenorhabditis elegans, destined to survive long periods of food scarcity and harsh environment, does not feed and has a very limited exchange of matter with the exterior. It was assumed that the survival time is determined by internal energy stores. Here, we show that ethanol can provide a potentially unlimited energy source for dauers by inducing a controlled metabolic shift that allows it to be metabolized into carbohydrates, amino acids, and lipids. Dauer larvae provided with ethanol survive much longer and have greater desiccation tolerance. On the cellular level, ethanol prevents the deterioration of mitochondria caused by energy depletion. By modeling the metabolism of dauers of wild-type and mutant strains with and without ethanol, we suggest that the mitochondrial health and survival of an organism provided with an unlimited source of carbon depends on the balance between energy production and toxic product(s) of lipid metabolism.


Subject(s)
Caenorhabditis elegans/metabolism , Ethanol/metabolism , Animals , Desiccation/methods , Larva , Lipid Metabolism
8.
Sci Rep ; 8(1): 14764, 2018 10 03.
Article in English | MEDLINE | ID: mdl-30282999

ABSTRACT

Shotgun lipidomic analysis of 203 lipids in 13 lipid classes performed on blood plasma of donors who had just suffered an acute coronary syndrome (ACS, n = 74), or an ischemic stroke (IS, n = 21), or who suffer from stable angina pectoris (SAP, n = 78), and an age-matched control cohort (n = 52), showed some of the highest inter-lipid class correlations between cholesteryl esters (CE) and phosphatidylcholines (PC) sharing a common fatty acid. The concentration of lysophospatidylcholine (LPC) and ratios of concentrations of CE to free cholesterol (Chol) were also lower in the CVD cohorts than in the control cohort, indicating a deficient conversion of Chol to CE in the blood plasma in the CVD subjects. A non-equilibrium reaction quotient, Q', describing the global homeostasis of cholesterol as manifested in the blood plasma was shown to have a value in the CVD cohorts (Q'ACS = 0.217 ± 0.084; Q'IS = 0.201 ± 0.084; Q'SAP = 0.220 ± 0.071) that was about one third less than in the control cohort (Q'Control = 0.320 ± 0.095, p < 1 × 10-4), suggesting its potential use as a rapid predictive/diagnostic measure of CVD-related irregularities in cholesterol homeostasis.


Subject(s)
Cardiovascular Diseases/blood , Cholesterol Esters/blood , Cholesterol/blood , Adult , Aged , Aged, 80 and over , Cardiovascular Diseases/genetics , Cardiovascular Diseases/pathology , Cholesterol/genetics , Cholesterol Esters/genetics , Fatty Acids/blood , Fatty Acids/genetics , Female , Homeostasis/genetics , Humans , Male , Middle Aged , Phosphatidylcholines/blood , Phosphatidylcholines/genetics
9.
Nat Chem Biol ; 13(6): 647-654, 2017 06.
Article in English | MEDLINE | ID: mdl-28369040

ABSTRACT

The nematode Caenorhabditis elegans requires exogenous cholesterol to survive and its depletion leads to early developmental arrest. Thus, tight regulation of cholesterol storage and distribution within the organism is indispensable. Here, we present a novel class of C. elegans phosphorylated glycosphingolipids, phosphoethanolamine glucosylceramides (PEGCs), capable of rescuing larval arrest induced by sterol starvation. We describe the total synthesis of a major PEGC species and demonstrate that the PEGC synthetic counterpart suppresses the dauer-constitutive phenotype of Niemann-Pick C1 (NPC1) and DAF-7/TGF-ß mutant worms caused by impaired intracellular sterol trafficking. PEGC biosynthesis depends on functional NPC1 and TGF-ß, indicating that these proteins control larval development at least partly through PEGC. Furthermore, glucosylceramide deficiency dramatically reduced PEGC amounts. However, the resulting developmental arrest could be rescued by oversaturation of food with cholesterol. Taken together, these data show that PEGC is essential for C. elegans development through its regulation of sterol mobilization.


Subject(s)
Caenorhabditis elegans/metabolism , Cholesterol/metabolism , Glycosphingolipids/metabolism , Animals , Caenorhabditis elegans/genetics , Caenorhabditis elegans/growth & development , Chromatography, Liquid , Mass Spectrometry , Molecular Structure , Mutation , Phosphorylation
10.
PLoS One ; 11(12): e0167208, 2016.
Article in English | MEDLINE | ID: mdl-27907064

ABSTRACT

The free-living soil nematode Caenorhabditis elegans adapts its development to the availability of food. When food is scarce and population density is high, worms enter a developmentally arrested non-feeding diapause stage specialized for long-term survival called the dauer larva. When food becomes available, they exit from the dauer stage, resume growth and reproduction. It has been postulated that compound(s) present in food, referred to as the "food signal", promote exit from the dauer stage. In this study, we have identified NAD+ as a component of bacterial extract that promotes dauer exit. NAD+, when dissolved in alkaline medium, causes opening of the mouth and ingestion of food. We also show that to initiate exit from the dauer stage in response to NAD+ worms require production of serotonin. Thus, C. elegans can use redox cofactors produced by dietary organisms to sense food.


Subject(s)
Animal Nutritional Physiological Phenomena , Caenorhabditis elegans/physiology , Life Cycle Stages , NAD/metabolism , Animals , NADP/metabolism , Serotonin/metabolism
11.
Eur J Lipid Sci Technol ; 117(10): 1540-1549, 2015 Oct.
Article in English | MEDLINE | ID: mdl-26494980

ABSTRACT

Blood plasma has gained protagonism in lipidomics studies due to its availability, uncomplicated collection and preparation, and informative readout of physiological status. At the same time, it is also technically challenging to analyze due to its complex lipid composition affected by many factors, which can hamper the throughput and/or lipidomics coverage. To tackle these issues, we developed a comprehensive, high throughput, and quantitative mass spectrometry-based shotgun lipidomics platform for blood plasma lipid analyses. The main hallmarks of this technology are (i) it is comprehensive, covering 22 quantifiable different lipid classes encompassing more than 200 lipid species; (ii) it is amenable to high-throughput, with less than 5 min acquisition time allowing the complete analysis of 200 plasma samples per day; (iii) it achieves absolute quantification, by inclusion of internal standards for every lipid class measured; (iv) it is highly reproducible, achieving an average coefficient of variation of <10% (intra-day), approx. 10% (inter-day), and approx. 15% (inter-site) for most lipid species; (v) it is easily transferable allowing the direct comparison of data acquired in different sites. Moreover, we thoroughly assessed the influence of blood stabilization with different anticoagulants and freeze-thaw cycles to exclude artifacts generated by sample preparation. Practical applications: This shotgun lipidomics platform can be implemented in different laboratories without compromising reproducibility, allowing multi-site studies and inter-laboratory comparisons. This possibility combined with the high-throughput, broad lipidomic coverage and absolute quantification are important aspects for clinical applications and biomarker research.

12.
Front Cell Neurosci ; 9: 325, 2015.
Article in English | MEDLINE | ID: mdl-26379497

ABSTRACT

Midbody release from proliferative neural progenitor cells is tightly associated with the neuronal commitment of neural progenitor cells during the progression of neurogenesis in the mammalian cerebral cortex. While the central portion of the midbody, a cytoplasmic bridge between nascent daughter cells, is engulfed by one of the daughter cell by most cells in vitro, it is shown to be released into the extracellular cerebrospinal fluid (CF) in vivo in mouse embryos. Several proteins have been involved in midbody release; however, few studies have addressed the participation of the plasma membrane's lipids in this process. Here, we show by Shotgun Lipidomic analysis that phosphatydylserine (PS), among other lipids, is enriched in the released midbodies compared to lipoparticles and cellular membranes, both collected from the CF of the developing mouse embryos. Moreover, the developing mouse embryo neural progenitor cells released two distinct types of midbodies carrying either internalized PS or externalized PS on their membrane. This strongly suggests that phagocytosis and an alternative fate of released midbodies exists. HeLa cells, which are known to mainly engulf the midbody show almost no PS exposure, if any, on the outer leaflet of the midbody membrane. These results point toward that PS exposure might be involved in the selection of recipients of released midbodies, either to be engulfed by daughter cells or phagocytosed by non-daughter cells or another cell type in the developing cerebral cortex.

13.
Proc Natl Acad Sci U S A ; 112(11): 3415-20, 2015 Mar 17.
Article in English | MEDLINE | ID: mdl-25733905

ABSTRACT

Hedgehog ligands control tissue development and homeostasis by alleviating repression of Smoothened, a seven-pass transmembrane protein. The Hedgehog receptor, Patched, is thought to regulate the availability of small lipophilic Smoothened repressors whose identity is unknown. Lipoproteins contain lipids required to repress Smoothened signaling in vivo. Here, using biochemical fractionation and lipid mass spectrometry, we identify these repressors as endocannabinoids. Endocannabinoids circulate in human and Drosophila lipoproteins and act directly on Smoothened at physiological concentrations to repress signaling in Drosophila and mammalian assays. Phytocannabinoids are also potent Smo inhibitors. These findings link organismal metabolism to local Hedgehog signaling and suggest previously unsuspected mechanisms for the physiological activities of cannabinoids.


Subject(s)
Drosophila melanogaster/metabolism , Endocannabinoids/metabolism , Hedgehog Proteins/antagonists & inhibitors , Signal Transduction , Allosteric Regulation , Amidohydrolases/metabolism , Animals , Endocannabinoids/blood , Hedgehog Proteins/metabolism , Homeostasis , Humans , Imaginal Discs/metabolism , Lipoproteins, VLDL/metabolism , Wings, Animal/metabolism
14.
Cell Host Microbe ; 16(6): 778-86, 2014 Dec 10.
Article in English | MEDLINE | ID: mdl-25498345

ABSTRACT

During invasion, Plasmodium, the causative agent of malaria, wraps itself in a parasitophorous vacuole membrane (PVM), which constitutes a critical interface between the parasite and its host cell. Within hepatocytes, each Plasmodium sporozoite generates thousands of new parasites, creating high demand for lipids to support this replication and enlarge the PVM. Here, a global analysis of the total lipid repertoire of Plasmodium-infected hepatocytes reveals an enrichment of neutral lipids and the major membrane phospholipid, phosphatidylcholine (PC). While infection is unaffected in mice deficient in key enzymes involved in neutral lipid synthesis and lipolysis, ablation of rate-limiting enzymes in hepatic PC biosynthetic pathways significantly decreases parasite numbers. Host PC is taken up by both P. berghei and P. falciparum and is necessary for correct localization of parasite proteins to the PVM, which is essential for parasite survival. Thus, Plasmodium relies on the abundance of these lipids within hepatocytes to support infection.


Subject(s)
Liver/parasitology , Malaria/metabolism , Phosphatidylcholines/biosynthesis , Plasmodium berghei/metabolism , Plasmodium falciparum/metabolism , Animals , Cell Line , Cell Survival , Female , Host-Parasite Interactions , Humans , Lipid Metabolism , Liver/metabolism , Malaria/parasitology , Mice , Mice, Inbred C57BL , Plasmodium berghei/growth & development , Plasmodium falciparum/growth & development , Sporozoites/growth & development , Sporozoites/metabolism
15.
Genes Dev ; 28(23): 2636-51, 2014 Dec 01.
Article in English | MEDLINE | ID: mdl-25452274

ABSTRACT

In Drosophila larvae, growth and developmental timing are regulated by nutrition in a tightly coordinated fashion. The networks that couple these processes are far from understood. Here, we show that the intestine responds to nutrient availability by regulating production of a circulating lipoprotein-associated form of the signaling protein Hedgehog (Hh). Levels of circulating Hh tune the rates of growth and developmental timing in a coordinated fashion. Circulating Hh signals to the fat body to control larval growth. It regulates developmental timing by controlling ecdysteroid production in the prothoracic gland. Circulating Hh is especially important during starvation, when it is also required for mobilization of fat body triacylglycerol (TAG) stores. Thus, we demonstrate that Hh, previously known only for its local morphogenetic functions, also acts as a lipoprotein-associated endocrine hormone, coordinating the response of multiple tissues to nutrient availability.


Subject(s)
Drosophila melanogaster/growth & development , Hedgehog Proteins/blood , Nutritional Physiological Phenomena/physiology , Animals , Drosophila melanogaster/metabolism , Hedgehog Proteins/metabolism , Intestinal Mucosa/metabolism , Larva
16.
PLoS Genet ; 9(12): e1003980, 2013.
Article in English | MEDLINE | ID: mdl-24348263

ABSTRACT

Glia are of vital importance for all complex nervous system. One of the many functions of glia is to insulate and provide trophic and metabolic support to axons. Here, using glial-specific RNAi knockdown in Drosophila, we silenced 6930 conserved genes in adult flies to identify essential genes and pathways. Among our screening hits, metabolic processes were highly represented, and genes involved in carbohydrate and lipid metabolic pathways appeared to be essential in glia. One critical pathway identified was de novo ceramide synthesis. Glial knockdown of lace, a subunit of the serine palmitoyltransferase associated with hereditary sensory and autonomic neuropathies in humans, resulted in ensheathment defects of peripheral nerves in Drosophila. A genetic dissection study combined with shotgun high-resolution mass spectrometry of lipids showed that levels of ceramide phosphoethanolamine are crucial for axonal ensheathment by glia. A detailed morphological and functional analysis demonstrated that the depletion of ceramide phosphoethanolamine resulted in axonal defasciculation, slowed spike propagation, and failure of wrapping glia to enwrap peripheral axons. Supplementing sphingosine into the diet rescued the neuropathy in flies. Thus, our RNAi study in Drosophila identifies a key role of ceramide phosphoethanolamine in wrapping of axons by glia.


Subject(s)
Axons/metabolism , Drosophila melanogaster/genetics , Neuroglia/metabolism , Sphingomyelins/genetics , Animals , Carbohydrate Metabolism/genetics , Cell Communication , Cell Movement/genetics , Drosophila melanogaster/growth & development , Gene Expression Regulation, Developmental , Gene Silencing , Genome, Insect , Humans , Lipid Metabolism/genetics , Neurogenesis/genetics , Peripheral Nerves/metabolism , RNA Interference , Sphingomyelins/metabolism
17.
PLoS One ; 8(8): e71846, 2013.
Article in English | MEDLINE | ID: mdl-23967253

ABSTRACT

AIMS: We tested whether characteristic changes of the plasma lipidome in individuals with comparable total lipids level associate with future cardiovascular disease (CVD) outcome and whether 23 validated gene variants associated with coronary artery disease (CAD) affect CVD associated lipid species. METHODS AND RESULTS: Screening of the fasted plasma lipidome was performed by top-down shotgun analysis and lipidome compositions compared between incident CVD cases (n = 211) and controls (n = 216) from the prospective population-based MDC study using logistic regression adjusting for Framingham risk factors. Associations with incident CVD were seen for eight lipid species (0.21≤q≤0.23). Each standard deviation unit higher baseline levels of two lysophosphatidylcholine species (LPC), LPC16∶0 and LPC20∶4, was associated with a decreased risk for CVD (P = 0.024-0.028). Sphingomyelin (SM) 38∶2 was associated with increased odds of CVD (P = 0.057). Five triglyceride (TAG) species were associated with protection (P = 0.031-0.049). LPC16∶0 was negatively correlated with the carotid intima-media thickness (P = 0.010) and with HbA1c (P = 0.012) whereas SM38∶2 was positively correlated with LDL-cholesterol (P = 0.0*10(-6)) and the q-values were good (q≤0.03). The risk allele of 8 CAD-associated gene variants showed significant association with the plasma level of several lipid species. However, the q-values were high for many of the associations (0.015≤q≤0.75). Risk allele carriers of 3 CAD-loci had reduced level of LPC16∶0 and/or LPC 20∶4 (P≤0.056). CONCLUSION: Our study suggests that CVD development is preceded by reduced levels of LPC16∶0, LPC20∶4 and some specific TAG species and by increased levels of SM38∶2. It also indicates that certain lipid species are intermediate phenotypes between genetic susceptibility and overt CVD. But it is a preliminary study that awaits replication in a larger population because statistical significance was lost for the associations between lipid species and future cardiovascular events when correcting for multiple testing.


Subject(s)
Cardiovascular Diseases/blood , Cardiovascular Diseases/epidemiology , Lipids/blood , Aged , Cardiovascular Diseases/genetics , Case-Control Studies , Cluster Analysis , Coronary Artery Disease/blood , Coronary Artery Disease/epidemiology , Coronary Artery Disease/genetics , Female , Gene Expression Profiling , Genetic Predisposition to Disease , Humans , Male , Metabolome , Middle Aged , Patient Outcome Assessment , Public Health Surveillance , Risk , Risk Factors
18.
J Cell Biol ; 201(2): 249-61, 2013 Apr 15.
Article in English | MEDLINE | ID: mdl-23589493

ABSTRACT

The BBSome is a complex of seven proteins, including BBS4, that is cycled through cilia by intraflagellar transport (IFT). Previous work has shown that the membrane-associated signaling protein phospholipase D (PLD) accumulates abnormally in cilia of Chlamydomonas reinhardtii bbs mutants. Here we show that PLD is a component of wild-type cilia but is enriched ∼150-fold in bbs4 cilia; this accumulation occurs progressively over time and results in altered ciliary lipid composition. When wild-type BBSomes were introduced into bbs cells, PLD was rapidly removed from the mutant cilia, indicating the presence of an efficient BBSome-dependent mechanism for exporting ciliary PLD. This export requires retrograde IFT. Importantly, entry of PLD into cilia is BBSome and IFT independent. Therefore, the BBSome is required only for the export phase of a process that continuously cycles PLD through cilia. Another protein, carbonic anhydrase 6, is initially imported normally into bbs4 cilia but lost with time, suggesting that its loss is a secondary effect of BBSome deficiency.


Subject(s)
Chlamydomonas reinhardtii/cytology , Chlamydomonas reinhardtii/enzymology , Cilia/enzymology , Endocytosis , Multiprotein Complexes/metabolism , Phospholipase D/metabolism , Signal Transduction , Cell Fusion , Chlamydomonas reinhardtii/metabolism , Diglycerides/metabolism , Flagella/metabolism , Lipid Metabolism , Mutation/genetics , Plant Proteins/metabolism , Protein Transport , Time Factors
19.
Mol Syst Biol ; 8: 600, 2012.
Article in English | MEDLINE | ID: mdl-22864382

ABSTRACT

Cells produce tens of thousands of different lipid species, but the importance of this complexity in vivo is unclear. Analysis of individual tissues and cell types has revealed differences in abundance of individual lipid species, but there has been no comprehensive study comparing tissue lipidomes within a single developing organism. Here, we used quantitative shotgun profiling by high-resolution mass spectrometry to determine the absolute (molar) content of 250 species of 14 major lipid classes in 6 tissues of animals at 27 developmental stages raised on 4 different diets. Comparing these lipidomes revealed unexpected insights into lipid metabolism. Surprisingly, the fatty acids present in dietary lipids directly influence tissue phospholipid composition throughout the animal. Furthermore, Drosophila differentially regulates uptake, mobilization and tissue accumulation of specific sterols, and undergoes unsuspected shifts in fat metabolism during larval and pupal development. Finally, we observed striking differences between tissue lipidomes that are conserved between phyla. This study provides a comprehensive, quantitative and expandable resource for further pharmacological and genetic studies of metabolic disorders and molecular mechanisms underlying dietary response.


Subject(s)
Diet , Drosophila/metabolism , Lipid Metabolism/physiology , Lipids/chemistry , Animals , Brain , Drosophila/chemistry , Drosophila/growth & development , Fat Body/chemistry , Fatty Acids/analysis , Fatty Acids/chemistry , Intestines/chemistry , Lipids/analysis , Metabolic Networks and Pathways , Models, Biological , Phospholipids/analysis , Phospholipids/chemistry , Salivary Glands/chemistry , Sterols/analysis , Sterols/chemistry , Tandem Mass Spectrometry , Tissue Distribution , Wings, Animal/chemistry
20.
PLoS Genet ; 8(7): e1002828, 2012.
Article in English | MEDLINE | ID: mdl-22844248

ABSTRACT

Interorgan lipid transport occurs via lipoproteins, and altered lipoprotein levels correlate with metabolic disease. However, precisely how lipoproteins affect tissue lipid composition has not been comprehensively analyzed. Here, we identify the major lipoproteins of Drosophila melanogaster and use genetics and mass spectrometry to study their assembly, interorgan trafficking, and influence on tissue lipids. The apoB-family lipoprotein Lipophorin (Lpp) is the major hemolymph lipid carrier. It is produced as a phospholipid-rich particle by the fat body, and its secretion requires Microsomal Triglyceride Transfer Protein (MTP). Lpp acquires sterols and most diacylglycerol (DAG) at the gut via Lipid Transfer Particle (LTP), another fat body-derived apoB-family lipoprotein. The gut, like the fat body, is a lipogenic organ, incorporating both de novo-synthesized and dietary fatty acids into DAG for export. We identify distinct requirements for LTP and Lpp-dependent lipid mobilization in contributing to the neutral and polar lipid composition of the brain and wing imaginal disc. These studies define major routes of interorgan lipid transport in Drosophila and uncover surprising tissue-specific differences in lipoprotein lipid utilization.


Subject(s)
Biological Transport/genetics , Drosophila melanogaster , Lipid Metabolism/genetics , Lipoproteins , Animals , Apolipoproteins B/metabolism , Carrier Proteins/genetics , Carrier Proteins/metabolism , Diglycerides/metabolism , Drosophila Proteins/metabolism , Drosophila melanogaster/genetics , Drosophila melanogaster/metabolism , Fat Body/metabolism , Fatty Acids/metabolism , Hemolymph/metabolism , Imaginal Discs/metabolism , Lipoproteins/chemistry , Lipoproteins/genetics , Lipoproteins/metabolism , Tissue Distribution
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