Using neurolipidomics to identify phospholipid mediators of synaptic (dys)function in Alzheimer's Disease
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Stephen Fai | Steffany A. L. Bennett | Daniel Figeys | Bettina Franko | D. Figeys | Nicolas Valenzuela | Hongbin Xu | S. Fai | S. Bennett | B. Franko | Nicolas Valenzuela | Hongbin Xu
[1] Takao Shimizu,et al. Biochemical properties and pathophysiological roles of cytosolic phospholipase A2s. , 2006, Biochimica et biophysica acta.
[2] Wataru Shinoda,et al. Zwitterionic lipid assemblies: molecular dynamics studies of monolayers, bilayers, and vesicles using a new coarse grain force field. , 2010, The journal of physical chemistry. B.
[3] W. Lukiw. Docosahexaenoic acid and amyloid-beta peptide signaling in Alzheimer's disease. , 2009, World review of nutrition and dietetics.
[4] Jeffrey C. Erlich,et al. Phospholipid‐Metabolizing Enzymes in Alzheimer's Disease: Increased Lysophospholipid Acyltransferase Activity and Decreased Phospholipase A2 Activity , 1998, Journal of neurochemistry.
[5] A. Shevchenko,et al. Lipidomics: coming to grips with lipid diversity , 2010, Nature Reviews Molecular Cell Biology.
[6] Shira Knafo,et al. PIP3 controls synaptic function by maintaining AMPA receptor clustering at the postsynaptic membrane , 2009, Nature Neuroscience.
[7] D. Butterfield,et al. Age-related loss of phospholipid asymmetry in APP NLh /APP NLh x PS-1 P264L /PS-1 P264L human double mutant knock-in mice: Relevance to Alzheimer disease , 2010, Neurobiology of Disease.
[8] W. Wickner,et al. Phosphoinositides and SNARE chaperones synergistically assemble and remodel SNARE complexes for membrane fusion , 2009, Proceedings of the National Academy of Sciences.
[9] P. Bria,et al. Is Alzheimer's disease a synaptic disorder? , 2008, Journal of Alzheimer's disease : JAD.
[10] D. Figeys,et al. Technological developments in lipidomics. , 2008, Briefings in functional genomics & proteomics.
[11] S. Wisniewski,et al. Upregulation of choline acetyltransferase activity in hippocampus and frontal cortex of elderly subjects with mild cognitive impairment , 2002, Annals of neurology.
[12] M. Miyazaki,et al. CHAPTER 7 – Fatty acid desaturation and chain elongation in mammals , 2008 .
[13] Eoin Fahy,et al. Lipid classification, structures and tools. , 2011, Biochimica et biophysica acta.
[14] B. Strooper,et al. The toxic Aβ oligomer and Alzheimer's disease: an emperor in need of clothes , 2012, Nature Neuroscience.
[15] Seth Love,et al. Fatty Acid Composition of Frontal, Temporal and Parietal Neocortex in the Normal Human Brain and in Alzheimer’s Disease , 2010, Neurochemical Research.
[16] P. Wood. Lipidomics of Alzheimer's disease: current status , 2012, Alzheimer's Research & Therapy.
[17] Jennifer A. Geaga,et al. Targeted lipidomics as a tool to investigate endocannabinoid function. , 2009, International review of neurobiology.
[18] M. Lavialle,et al. Long chain‐polyunsaturated fatty acids modulate membrane phospholipid composition and protein localization in lipid rafts of neural stem cell cultures , 2010, Journal of cellular biochemistry.
[19] G. Schiavo,et al. Equivalent Effects of Snake PLA2 Neurotoxins and Lysophospholipid-Fatty Acid Mixtures , 2005, Science.
[20] V. Cherezov,et al. Controlling membrane cholesterol content. A role for polyunsaturated (docosahexaenoate) phospholipids. , 2002, Biochemistry.
[21] Changbong Hyeon,et al. Dynamic Ca2+-Dependent Stimulation of Vesicle Fusion by Membrane-Anchored Synaptotagmin 1 , 2010, Science.
[22] Thin, stubby or mushroom: spine pathology in Alzheimer's disease. , 2009, Current Alzheimer research.
[23] N. Webb,et al. Biology of Secretory Phospholipase A2 , 2008, Cardiovascular Drugs and Therapy.
[24] B. Kriem,et al. Cytosolic phospholipase A2 mediates neuronal apoptosis induced by soluble oligomers of the amyloid-beta peptide. , 2005, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[25] L Carlin,et al. Neocortical neurofibrillary tangles correlate with dementia severity in Alzheimer's disease. , 1995, Archives of neurology.
[26] Y. Ihara,et al. Phosphoinositides Suppress γ-Secretase in Both the Detergent-soluble and -insoluble States* , 2008, Journal of Biological Chemistry.
[27] Á. Simonyi,et al. Phospholipases A2 and neural membrane dynamics: implications for Alzheimer’s disease , 2011, Journal of neurochemistry.
[28] 宁北芳,et al. 疟原虫var基因转换速率变化导致抗原变异[英]/Paul H, Robert P, Christodoulou Z, et al//Proc Natl Acad Sci U S A , 2005 .
[29] H. C. Hartzell,et al. Inhibition of AMPA receptor trafficking at hippocampal synapses by β-amyloid oligomers: the mitochondrial contribution , 2010, Molecular Brain.
[30] Gary W. Slater,et al. Visualization and Phospholipid Identification (VaLID): online integrated search engine capable of identifying and visualizing glycerophospholipids with given mass , 2012, Bioinform..
[31] David A. Snowdon,et al. Healthy Aging and Dementia: Findings from the Nun Study , 2003, Annals of Internal Medicine.
[32] S. Dante,et al. Membrane fusogenic activity of the Alzheimer's peptide A beta(1-42) demonstrated by small-angle neutron scattering. , 2008, Journal of molecular biology.
[33] Mark T. Waters,et al. This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits distribution,andreproductioninanymedium,providedtheoriginalauthorandsourcearecredited.Thislicensedoesnot permit commercial exploitation or the creation of derivative works without sp , 2009 .
[34] Cesare Montecucco,et al. Presynaptic enzymatic neurotoxins , 2006, Journal of neurochemistry.
[35] K. Lunetta,et al. The neuronal sortilin-related receptor SORL1 is genetically associated with Alzheimer disease , 2007, Nature Genetics.
[36] R. Medda,et al. FCS in STED microscopy: studying the nanoscale of lipid membrane dynamics. , 2013, Methods in enzymology.
[37] P. Axelsen,et al. Quantitative analysis of phospholipids containing arachidonate and docosahexaenoate chains in microdissected regions of mouse brain[S] , 2010, Journal of Lipid Research.
[38] L. Horrocks,et al. Interactions between neural membrane glycerophospholipid and sphingolipid mediators: A recipe for neural cell survival or suicide , 2007, Journal of neuroscience research.
[39] N. Bazan,et al. Neuronal damage by secretory phospholipase A2: modulation by cytosolic phospholipase A2, platelet-activating factor, and cyclooxygenase-2 in neuronal cells in culture , 2003, Neuroscience Letters.
[40] D. Selkoe,et al. Natural oligomers of the amyloid-β protein specifically disrupt cognitive function , 2005, Nature Neuroscience.
[41] R. Jahn,et al. Structure parameters of synaptic vesicles quantified by small-angle x-ray scattering. , 2010, Biophysical journal.
[42] Xianlin Han,et al. Neurolipidomics: challenges and developments. , 2007, Frontiers in bioscience : a journal and virtual library.
[43] Sudha Seshadri,et al. Genome-wide analysis of genetic loci associated with Alzheimer disease. , 2010, JAMA.
[44] R. Cooks,et al. Three-dimensional vizualization of mouse brain by lipid analysis using ambient ionization mass spectrometry. , 2010, Angewandte Chemie.
[45] D. Figeys,et al. Lyso-form fragment ions facilitate the determination of stereospecificity of diacyl glycerophospholipids. , 2011, Rapid communications in mass spectrometry : RCM.
[46] D. Piomelli,et al. A neuroscientist's guide to lipidomics , 2007, Nature Reviews Neuroscience.
[47] A. Vighetto,et al. Up-regulation of hippocampal serotonin metabolism in mild cognitive impairment , 2007, Neurology.
[48] A. A. Farooqui. Studies on Plasmalogen-Selective Phospholipase A2 in Brain , 2010, Molecular Neurobiology.
[49] K. Zahs,et al. ‘Too much good news’ – are Alzheimer mouse models trying to tell us how to prevent, not cure, Alzheimer's disease? , 2010, Trends in Neurosciences.
[50] S. Hell,et al. Direct observation of the nanoscale dynamics of membrane lipids in a living cell , 2009, Nature.
[51] Sun Young Shin,et al. Presenilin mutations linked to familial Alzheimer's disease cause an imbalance in phosphatidylinositol 4,5-bisphosphate metabolism , 2006, Proceedings of the National Academy of Sciences.
[52] Xianlin Han. Multi-dimensional mass spectrometry-based shotgun lipidomics and the altered lipids at the mild cognitive impairment stage of Alzheimer's disease. , 2010, Biochimica et biophysica acta.
[53] C. Cotman,et al. Elevated Stearoyl-CoA Desaturase in Brains of Patients with Alzheimer's Disease , 2011, PloS one.
[54] H. Naim,et al. Domains in biological membranes. , 2009, Experimental cell research.
[55] P. Vadas,et al. Lipoproteins are substrates for human secretory group IIA phospholipase A2: preferential hydrolysis of acute phase HDL. , 1998, Journal of lipid research.
[56] M. Memo,et al. Loss of phospholipid asymmetry and elevated brain apoptotic protein levels in subjects with amnestic mild cognitive impairment and Alzheimer disease , 2008, Neurobiology of Disease.
[57] S. Shaikh,et al. Oleic- and docosahexaenoic acid-containing phosphatidylethanolamines differentially phase separate from sphingomyelin. , 2009, Biochimica et biophysica acta.
[58] R. Gross,et al. Plasmenylethanolamine facilitates rapid membrane fusion: a stopped-flow kinetic investigation correlating the propensity of a major plasma membrane constituent to adopt an HII phase with its ability to promote membrane fusion. , 1994, Biochemistry.
[59] Karl Herrup,et al. Reimagining Alzheimer's Disease—An Age-Based Hypothesis , 2010, The Journal of Neuroscience.
[60] T. Dandekar,et al. Developmental profiling by mass spectrometry of phosphocholine containing phospholipids in the rat nervous system reveals temporo‐spatial gradients , 2010, Journal of neurochemistry.
[61] M. Gill,et al. Four Components Describe Behavioral Symptoms in 1,120 Individuals with Late‐Onset Alzheimer's Disease , 2006, Journal of the American Geriatrics Society.
[62] Markus R Wenk,et al. Comparative Lipidomic Analysis of Mouse and Human Brain with Alzheimer Disease* , 2011, The Journal of Biological Chemistry.
[63] David S. Park,et al. Amyloid-β42 signals tau hyperphosphorylation and compromises neuronal viability by disrupting alkylacylglycerophosphocholine metabolism , 2009, Proceedings of the National Academy of Sciences.
[64] D. Berman,et al. Oligomeric amyloid-β peptide disrupts phosphatidylinositol-4,5-bisphosphate metabolism , 2008, Nature Neuroscience.
[65] Takao Shimizu,et al. A Single Enzyme Catalyzes Both Platelet-activating Factor Production and Membrane Biogenesis of Inflammatory Cells , 2007, Journal of Biological Chemistry.
[66] Joachim Herz,et al. Reelin signaling antagonizes β-amyloid at the synapse , 2009, Proceedings of the National Academy of Sciences.
[67] Akihiro Kusumi,et al. Hierarchical organization of the plasma membrane: Investigations by single‐molecule tracking vs. fluorescence correlation spectroscopy , 2010, FEBS letters.
[68] N. Bazan,et al. Docosahexaenoic acid neurolipidomics. , 2010, Prostaglandins & other lipid mediators.
[69] G. Lambeau,et al. What can venom phospholipases A(2) tell us about the functional diversity of mammalian secreted phospholipases A(2)? , 2000, Biochimie.
[70] T. Wisniewski,et al. 5‐Lipoxygenase gene disruption reduces amyloid‐β pathology in a mouse model of Alzheimer's disease , 2008, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[71] Harvey T. McMahon,et al. Membrane curvature and mechanisms of dynamic cell membrane remodelling , 2005, Nature.
[72] Rhoda Weiss,et al. A new role. , 2013, Marketing health services.
[73] N. Bazan,et al. Docosahexaenoic acid and the aging brain. , 2008, The Journal of nutrition.
[74] Carl W. Cotman,et al. Deficient Liver Biosynthesis of Docosahexaenoic Acid Correlates with Cognitive Impairment in Alzheimer's Disease , 2010, PloS one.
[75] R. Winter,et al. Microdomains in lipid vesicles: structure and distribution assessed by small-angle neutron scattering. , 2010, The journal of physical chemistry. B.
[76] B. Wolf,et al. A frontal variant of Alzheimer’s disease exhibits decreased calcium-independent phospholipase A2 activity in the prefrontal cortex , 2000, Neurochemistry International.
[77] Li-Huei Tsai,et al. Bridging Physiology and Pathology in AD , 2009, Cell.
[78] P. Hof,et al. Changes in dendritic complexity and spine morphology in transgenic mice expressing human wild-type tau , 2010, Brain Structure and Function.
[79] B. Jena,et al. Membrane lipids influence protein complex assembly-disassembly. , 2010, Journal of the American Chemical Society.
[80] Xianlin Han,et al. Plasmalogen deficiency in early Alzheimer's disease subjects and in animal models: molecular characterization using electrospray ionization mass spectrometry , 2001, Journal of neurochemistry.
[81] C. Yap,et al. Compartmentalizing the neuronal plasma membrane from axon initial segments to synapses. , 2009, International review of cell and molecular biology.
[82] L. Mucke,et al. Phospholipase A2 reduction ameliorates cognitive deficits in a mouse model of Alzheimer's disease , 2008, Nature Neuroscience.
[83] Mathieu Géraldine,et al. DHA enhances the noradrenaline release by SH-SY5Y cells , 2010, Neurochemistry International.
[84] B. Puig,et al. Lipid alterations in lipid rafts from Alzheimer's disease human brain cortex. , 2010, Journal of Alzheimer's disease : JAD.
[85] Hee-Yong Kim,et al. A new role for apolipoprotein E: modulating transport of polyunsaturated phospholipid molecular species in synaptic plasma membranes , 2002, Journal of neurochemistry.
[86] Martin Caffrey,et al. Molecular organization of cholesterol in polyunsaturated membranes: microdomain formation. , 2002, Biophysical journal.
[87] Alexander D. MacKerell,et al. Molecular-level organization of saturated and polyunsaturated fatty acids in a phosphatidylcholine bilayer containing cholesterol. , 2004, Biochemistry.
[88] E. Ikonen,et al. Murine cathepsin D deficiency is associated with dysmyelination/myelin disruption and accumulation of cholesteryl esters in the brain , 2010, Journal of neurochemistry.
[89] J. Klein. Membrane breakdown in acute and chronic neurodegeneration: focus on choline-containing phospholipids , 2000, Journal of Neural Transmission.
[90] Donald A. Wilson,et al. ApoE-Directed Therapeutics Rapidly Clear β-Amyloid and Reverse Deficits in AD Mouse Models , 2012, Science.
[91] A. Brand,et al. Retailoring docosahexaenoic acid‐containing phospholipid species during impaired neurogenesis following omega‐3 α‐linolenic acid deprivation , 2010, Journal of neurochemistry.
[92] D. Selkoe. Alzheimer's disease. , 2011, Cold Spring Harbor perspectives in biology.
[93] L. Kuller,et al. Dementia and Alzheimer’s disease: A new direction. The 2010 Jay L. Foster Memorial Lecture , 2011, Alzheimer's & Dementia.
[94] Xianlin Han,et al. The Highly Selective Production of 2-Arachidonoyl Lysophosphatidylcholine Catalyzed by Purified Calcium-independent Phospholipase A2γ , 2005, Journal of Biological Chemistry.
[95] J. Lord,et al. Generation of diacylglycerol molecular species through the cell cycle: a role for 1-stearoyl, 2-arachidonyl glycerol in the activation of nuclear protein kinase C-betaII at G2/M. , 2002, Journal of cell science.
[96] Charles N Serhan,et al. A role for docosahexaenoic acid-derived neuroprotectin D1 in neural cell survival and Alzheimer disease. , 2005, The Journal of clinical investigation.
[97] Daniel Figeys,et al. Lipidomics era: accomplishments and challenges. , 2010, Mass spectrometry reviews.
[98] Takao Shimizu,et al. Identification of a Novel Noninflammatory Biosynthetic Pathway of Platelet-activating Factor* , 2008, Journal of Biological Chemistry.
[99] C. Power,et al. Neurolipidomics: an inflammatory perspective on fat in the brain. , 2004, Neurology.
[100] O. Andersen,et al. Docosahexaenoic acid alters bilayer elastic properties , 2007, Proceedings of the National Academy of Sciences.
[101] H. Callender,et al. Quantification of diacylglycerol species from cellular extracts by electrospray ionization mass spectrometry using a linear regression algorithm. , 2007, Analytical chemistry.
[102] Stavros J. Baloyannis,et al. Dendritic and spinal pathology in the acoustic cortex in Alzheimer's disease: morphological and morphometric estimation by Golgi technique and electron microscopy , 2007, Acta oto-laryngologica.
[103] P. Gopalakrishnakone,et al. Group IIA secretory phospholipase A2 stimulates exocytosis and neurotransmitter release in pheochromocytoma-12 cells and cultured rat hippocampal neurons , 2003, Neuroscience.
[104] M. Pericak-Vance,et al. Apolipoprotein E: high-avidity binding to beta-amyloid and increased frequency of type 4 allele in late-onset familial Alzheimer disease. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[105] Richard J. Kryscio,et al. Alzheimer’s disease is not “brain aging”: neuropathological, genetic, and epidemiological human studies , 2011, Acta Neuropathologica.
[106] J. Hawthorne,et al. Reduced Phosphoinositide Concentrations in Anterior Temporal Cortex of Alzheimer‐Diseased Brains , 1987, Journal of neurochemistry.
[107] J. Pettegrew,et al. Psychosis in Alzheimer disease: postmortem magnetic resonance spectroscopy evidence of excess neuronal and membrane phospholipid pathology , 2002, Neurobiology of Aging.
[108] S. Bennett,et al. Platelet activating factor‐induced neuronal apoptosis is initiated independently of its G‐protein coupled PAF receptor and is inhibited by the benzoate orsellinic acid , 2007, Journal of neurochemistry.
[109] B. Kriem,et al. Cytosolic phospholipase A2 mediates neuronal apoptosis induced by soluble oligomers of the amyloid‐β peptide , 2005 .
[110] D. Figeys,et al. Identification of lysophosphatidylcholine (LPC) and platelet activating factor (PAF) from PC12 cells and mouse cortex using liquid chromatography/multi-stage mass spectrometry (LC/MS3). , 2008, Rapid communications in mass spectrometry : RCM.
[111] Thomas W. Mühleisen,et al. Genome-wide association study identifies variants at CLU and PICALM associated with Alzheimer's disease , 2013, Nature Genetics.
[112] Christian Eggeling,et al. Fast molecular tracking maps nanoscale dynamics of plasma membrane lipids , 2010, Proceedings of the National Academy of Sciences.
[113] K. Blennow,et al. Cerebrospinal fluid secretory Ca2+-dependent phospholipase A2 activity is increased in Alzheimer disease. , 2009, Clinical chemistry.
[114] S. Blanksby,et al. Advances in mass spectrometry for lipidomics. , 2010, Annual review of analytical chemistry.
[115] J. Hardy,et al. The Amyloid Hypothesis of Alzheimer ’ s Disease : Progress and Problems on the Road to Therapeutics , 2009 .
[116] J. Buxbaum,et al. Profiling brain and plasma lipids in human APOE epsilon2, epsilon3, and epsilon4 knock-in mice using electrospray ionization mass spectrometry. , 2010, Journal of Alzheimer's disease : JAD.
[117] L. Mucke,et al. Amyloid-β–induced neuronal dysfunction in Alzheimer's disease: from synapses toward neural networks , 2010, Nature Neuroscience.
[118] E. E. Williams,et al. The curvature and cholesterol content of phospholipid bilayers alter the transbilayer distribution of specific molecular species of phosphatidylethanolamine. , 2000, Molecular membrane biology.
[119] O. Arancio,et al. Phospholipase D2 Ablation Ameliorates Alzheimer's Disease-Linked Synaptic Dysfunction and Cognitive Deficits , 2010, The Journal of Neuroscience.
[120] K. Lunetta,et al. Meta-analysis confirms CR1, CLU, and PICALM as alzheimer disease risk loci and reveals interactions with APOE genotypes. , 2010, Archives of neurology.
[121] S. Rapoport,et al. Extracellular-derived calcium does not initiate in vivo neurotransmission involving docosahexaenoic acid , 2010, Journal of Lipid Research.
[122] G. Mariani,et al. Fatty acid facts, Part IV: docosahexaenoic acid and Alzheimer's disease. A story of mice, men and fish. , 2009, Drug News and Perspectives.
[123] W. Wickner,et al. Complex Lipid Requirements for SNARE- and SNARE Chaperone-dependent Membrane Fusion* , 2009, The Journal of Biological Chemistry.
[124] S. Wassall,et al. Molecular organization of cholesterol in polyunsaturated phospholipid membranes: a solid state 2H NMR investigation , 1999, FEBS letters.
[125] N. Inestrosa,et al. β-Amyloid Causes Depletion of Synaptic Vesicles Leading to Neurotransmission Failure* , 2009, The Journal of Biological Chemistry.
[126] D. Figeys,et al. Identification and quantitation of changes in the platelet activating factor family of glycerophospholipids over the course of neuronal differentiation by high-performance liquid chromatography electrospray ionization tandem mass spectrometry. , 2007, Analytical chemistry.
[127] D. McCormick,et al. Essential Role of Phosphoinositide Metabolism in Synaptic Vesicle Recycling , 1999, Cell.
[128] Helmut Grubmüller,et al. Molecular Anatomy of a Trafficking Organelle , 2006, Cell.
[129] R. Wurtman,et al. Use of phosphatide precursors to promote synaptogenesis. , 2009, Annual review of nutrition.
[130] S. Kawashima,et al. Turnover of synaptic membranes: Age‐related changes and modulation by dietary restriction , 2002, Journal of neuroscience research.
[131] B. Davletov,et al. α‐Synuclein sequesters arachidonic acid to modulate SNARE‐mediated exocytosis , 2010, EMBO Reports.
[132] Robert C Murphy,et al. Working towards an exegesis for lipids in biology. , 2009, Nature chemical biology.
[133] D. Piomelli,et al. Towards a whole-body systems [multi-organ] lipidomics in Alzheimer's disease. , 2011, Prostaglandins, leukotrienes, and essential fatty acids.