Structural and functional roles of ether lipids

John M. Dean, Irfan J. Lodhi

PDF(732 KB)
PDF(732 KB)
Protein Cell ›› 2018, Vol. 9 ›› Issue (2) : 196-206. DOI: 10.1007/s13238-017-0423-5
REVIEW
REVIEW

Structural and functional roles of ether lipids

Author information +
History +

Abstract

Ether lipids, such as plasmalogens, are peroxisomederived glycerophospholipids in which the hydrocarbon chain at the sn-1 position of the glycerol backbone is attached by an ether bond, as opposed to an ester bond in the more common diacyl phospholipids. This seemingly simple biochemical change has profound structural and functional implications. Notably, the tendency of ether lipids to form non-lamellar inverted hexagonal structures in model membranes suggests that they have a role in facilitating membrane fusion processes. Ether lipids are also important for the organization and stability of lipid raft microdomains, cholesterol-rich membrane regions involved in cellular signaling. In addition to their structural roles, a subset of ether lipids are thought to function as endogenous antioxidants, and emerging studies suggest that they are involved in cell differentiation and signaling pathways. Here, we review the biology of ether lipids and their potential significance in human disorders, including neurological diseases, cancer, and metabolic disorders.

Keywords

ether lipids / plasmalogen / phospholipid / peroxisomes / cancer / metabolic disorders

Cite this article

Download citation ▾
John M. Dean, Irfan J. Lodhi. Structural and functional roles of ether lipids. Protein Cell, 2018, 9(2): 196‒206 https://doi.org/10.1007/s13238-017-0423-5

References

[1]
Albert DH, Anderson CE (1977) Ether-linked glycerolipids in human brain tumors . <?Pub Caret?>Lipids 12:188–192
CrossRef Google scholar
[2]
Albert CJ, Thukkan AK, Heuertz RM (2003) Eosinophil peroxidase-derived reactive brominating species target the vinyl ether bond of plasmalogens generating a novel chemoattractant, alpha-bromo fatty aldehyde . J Biol Chem 278:8942–8950.
CrossRef Google scholar
[3]
Alshehry ZH, Mundra PA, Barlow CK (2016) Plasma lipidomic profiles improve on traditional risk factors for the prediction of cardiovascular events in type 2 diabetes mellitus clinical perspective . Circulation 134:1637–1650.
CrossRef Google scholar
[4]
Barøy T, Koster J, Strømme P (2015) A novel type of rhizomelic chondrodysplasia punctata, RCDP5, is caused by loss of the PEX5 long isoform . Hum Mol Genet 24:5845–5854.
CrossRef Google scholar
[5]
Barr J, Caballería J, Martínez-Arranz I (2012) Obesitydependent metabolic signatures associated with nonalcoholic fatty liver disease progression . J Proteome Res 11:2521–2532.
CrossRef Google scholar
[6]
Benjamin DI, Cozzo A, Ji X (2013) Ether lipid generating enzyme AGPS alters the balance of structural and signaling lipids to fuel cancer pathogenicity . Proc Natl Acad Sci 110:14912–14917.
CrossRef Google scholar
[7]
Bräutigam C, Engelmann B, Reiss D (1996) Plasmalogen phospholipids in plasma lipoproteins of normolipidemic donors and patients with hypercholesterolemia treated by LDL apheresis . Atherosclerosis 119:77–88
CrossRef Google scholar
[8]
Braverman NE, Moser AB (2012) Functions of plasmalogen lipids in health and disease . Biochim Biophys Acta BBA Mol Basis Dis 1822:1442–1452.
CrossRef Google scholar
[9]
Braverman N, Steel G, Obie C (1997) Human PEX7 encodes the peroxisomal PTS2 receptor and is responsible for rhizomelic chondrodysplasia punctata . Nat Genet 15:369–376
CrossRef Google scholar
[10]
Braverman NE, Raymond GV, Rizzo WB (2016) Peroxisome biogenesis disorders in the Zellweger spectrum: an overview of current diagnosis, clinical manifestations, and treatment guidelines . Mol Genet Metab 117:313–321.
CrossRef Google scholar
[11]
Brites P (2003) Impaired neuronal migration and endochondral ossification in Pex7 knockout mice: a model for rhizomelic chondrodysplasia punctata . Hum Mol Genet 12:2255–2267.
CrossRef Google scholar
[12]
Brites P, Ferreira AS, Ferreira da Silva T (2011) Alkyl-glycerol rescues plasmalogen levels and pathology of ether-phospholipid deficient mice . PLoS ONE 6:e28539.
CrossRef Google scholar
[13]
Brodde A, Teigler A, Brugger B (2012) Impaired neurotransmission in ether lipid-deficient nerve terminals . Hum Mol Genet 21:2713–2724.
CrossRef Google scholar
[14]
Broniec A, Klosinski R, Pawlak A (2011) Interactions of plasmalogens and their diacyl analogs with singlet oxygen in selected model systems . Free Radic Biol Med 50:892–898.
CrossRef Google scholar
[15]
Broniec A, Żądło A, Pawlak A (2017) Interaction of plasmenylcholine with free radicals in selected model systems . Free Radic Biol Med 106:368–378
CrossRef Google scholar
[16]
Buchert R, Tawamie H, Smith C (2014) A peroxisomal disorder of severe intellectual disability, epilepsy, and cataracts due to fatty acyl-CoA reductase 1 deficiency . Am J Hum Genet 95:602–610.
CrossRef Google scholar
[17]
Cader MZ, Boroviak K, Zhang Q (2016) C13orf31 (FAMIN) is a central regulator of immunometabolic function . Nat Immunol 17:1046–1056.
CrossRef Google scholar
[18]
Chen X, Chen H, Dai M (2016) Plasma lipidomics profiling identified lipid biomarkers in distinguishing early-stage breast cancer from benign lesions . Oncotarget 7:36622–36631
CrossRef Google scholar
[19]
da Silva TF, Sousa VF, Malheiro AR, Brites P (2012) The importance of ether-phospholipids: a view from the perspective of mouse models. Biochim Biophys Acta BBA Mol Basis Dis 1822:1501–1508.
CrossRef Google scholar
[20]
da Silva TF, Eira J, Lopes AT (2014) Peripheral nervous system plasmalogens regulate Schwann cell differentiation and myelination . J Clin Investig 124:2560–2570.
CrossRef Google scholar
[21]
Davies SS, Pontsler AV, Marathe GK (2001) Oxidized alkyl phospholipids are specific, high affinity peroxisome proliferatoractivated receptor ligands and agonists . J Biol Chem 276:16015–16023.
CrossRef Google scholar
[22]
Eisinger K, Krautbauer S, Hebel T (2014) Lipidomic analysis of the liver from high-fat diet induced obese mice identifies changes in multiple lipid classes . Exp Mol Pathol 97:37–43.
CrossRef Google scholar
[23]
Fabelo N, Martín V, Santpere G (2011) Severe alterations in lipid composition of frontal cortex lipid rafts from Parkinson’s disease and incidental Parkinson’s disease . Mol Med 17:1107
CrossRef Google scholar
[24]
Facciotti F, Ramanjaneyulu GS, Lepore M (2012) Peroxisomederived lipids are self antigens that stimulate invariant natural killer T cells in the thymus . Nat Immunol 13:474–480.
CrossRef Google scholar
[25]
Farooqui AA, Horrocks LA (2001) Book review: plasmalogens: workhorse lipids of membranes in normal and injured neurons and glia . Neuroscientist 7:232–245
CrossRef Google scholar
[26]
Felder TK, Ring-Dimitriou S, Auer S (2017) Specific circulating phospholipids, acylcarnitines, amino acids and biogenic amines are aerobic exercise markers . J Sci Med Sport.
CrossRef Google scholar
[27]
Fu S, Yang L, Li P (2011) Aberrant lipid metabolism disrupts calcium homeostasis causing liver endoplasmic reticulum stress in obesity . Nature 473:528–531.
CrossRef Google scholar
[28]
Gibellini F, Smith TK (2010) The Kennedy pathway—de novo synthesis of phosphatidylethanolamine and phosphatidylcholine . IUBMB Life 62:414–428
CrossRef Google scholar
[29]
Ginsberg L, Rafique S, Xuereb JH (1995) Disease and anatomic specificity of ethanolamine plasmalogen deficiency in Alzheimer’s disease brain . Brain Res 698:223–226
CrossRef Google scholar
[30]
Ginsberg L, Xuereb JH, Gershfeld NL (1998) Membrane instability, plasmalogen content, and Alzheimer’s disease . J Neurochem 70:2533–2538
CrossRef Google scholar
[31]
Glaser PE, Gross RW (1994) 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 . Biochemistry (Mosc) 33:5805–5812
CrossRef Google scholar
[32]
Goodenowe DB, Cook LL, Liu J (2007) Peripheral ethanolamine plasmalogen deficiency: a logical causative factor in Alzheimer’s disease and dementia . J Lipid Res 48:2485–2498.
CrossRef Google scholar
[33]
Graessler J, Schwudke D, Schwarz PEH (2009) Top-down lipidomics reveals ether lipid deficiency in blood plasma of hypertensive patients . PLoS ONE 4:e6261.
CrossRef Google scholar
[34]
Grimm MOW, Kuchenbecker J, Rothhaar TL (2011) Plasmalogen synthesis is regulated via alkyl-dihydroxyacetonephosphatesynthase by amyloid precursor protein processing and is affected in Alzheimer’s disease: dysregulation of plasmalogen synthesis in AD . J Neurochem 116:916–925.
CrossRef Google scholar
[35]
Hajra AK, Das AK (1996) Lipid biosynthesis in peroxisomesa . Ann NY Acad Sci 804:129–141
CrossRef Google scholar
[36]
Han X (2005) Lipid alterations in the earliest clinically recognizable stage of Alzheimer’s disease: implication of the role of lipids in the pathogenesis of Alzheimer’s disease . Curr Alzheimer Res 2:65–77
CrossRef Google scholar
[37]
Han XL, Gross RW (1990) Plasmenylcholine and phosphatidylcholine membrane bilayers possess distinct conformational motifs . Biochemistry (Mosc) 29:4992–4996
CrossRef Google scholar
[38]
Han X, Holtzman DM, McKeel DW (2001) Plasmalogen deficiency in early Alzheimer’s disease subjects and in animal models: molecular characterization using electrospray ionization mass spectrometry . J Neurochem 77:1168–1180
CrossRef Google scholar
[39]
Hillebrand M, Gersting SW, Lotz-Havla AS (2012) Identification of a new fatty acid synthesis-transport machinery at the peroxisomal membrane . J Biol Chem 287:210–221.
CrossRef Google scholar
[40]
Hofer DC, Pessentheiner AR, Pelzmann HJ (2017) Critical role of the peroxisomal protein PEX16 in white adipocyte development and lipid homeostasis . Biochim Biophys Acta BBA Mol Cell Biol Lipids 1862:358–368.
CrossRef Google scholar
[41]
Honsho M, Asaoku S, Fukumoto K, Fujiki Y (2013) Topogenesis and homeostasis of fatty acyl-CoA reductase 1 . J Biol Chem 288:34588–34598.
CrossRef Google scholar
[42]
Hossain MS, Ifuku M, Take S (2013) Plasmalogens rescue neuronal cell death through an activation of AKT and ERK survival signaling . PLoS ONE 8:e83508.
CrossRef Google scholar
[43]
Hossain MS, Mineno K, Katafuchi T (2016) Neuronal orphan G-Protein coupled receptor proteins mediate plasmalogensinduced activation of ERK and Akt signaling . PLOS ONE 11: e0150846.
CrossRef Google scholar
[44]
Hua R, Cheng D, Coyaud É (2017) VAPs and ACBD5 tether peroxisomes to the ER for peroxisome maintenance and lipid homeostasis . J Cell Biol.
CrossRef Google scholar
[45]
Huang JH, Park H, Iaconelli J (2016) Unbiased metabolite profiling of schizophrenia fibroblasts under stressful perturbations reveals dysregulation of plasmalogens and phosphatidylcholines . J Proteome Res.
CrossRef Google scholar
[46]
James PF, Lake AC, Hajra AK (1997) An animal cell mutant with a deficiency in acyl/alkyl-dihydroxyacetone-phosphate reductase activity: effects on the biosynthesis of ether-linked and diacyl glycerolipids . J Biol Chem 272:23540–23546
CrossRef Google scholar
[47]
Jang JE, Park H-S, Yoo HJ (2017) Protective role of endogenous plasmalogens against hepatic steatosis and steatohepatitis . Hepatology.
CrossRef Google scholar
[48]
Khaselev N, Murphy RC (1999) Susceptibility of plasmenyl glycerophosphoethanolamine lipids containing arachidonate to oxidative degradation . Free Radic Biol Med 26:275–284
CrossRef Google scholar
[49]
Komljenovic D, Sandhoff R, Teigler A (2009) Disruption of blood-testis barrier dynamics in ether-lipid-deficient mice . Cell Tissue Res 337:281–299.
CrossRef Google scholar
[50]
LaBelle EF, Hajra AK (1974) Purification and kinetic properties of acyl and alkyl dihydroxyacetone phosphate oxidoreductase . J Biol Chem 249:6936–6944
[51]
Lankinen M, Schwab U, Kolehmainen M (2016) A healthy nordic diet alters the plasma lipidomic profile in adults with features of metabolic syndrome in a multicenter randomized dietary intervention . J Nutr 146:662–672.
CrossRef Google scholar
[52]
Lenzen S, Drinkgern J, Tiedge M (1996) Low antioxidant enzyme gene expression in pancreatic islets compared with various other mouse tissues . Free Radic Biol Med 20:463–466
CrossRef Google scholar
[53]
Li Z, Agellon LB, Allen TM (2006) The ratio of phosphatidylcholine to phosphatidylethanolamine influences membrane integrity and steatohepatitis . Cell Metab 3:321–331.
CrossRef Google scholar
[54]
Lodhi IJ, Yin L, Jensen-Urstad APL (2012) Inhibiting adipose tissue lipogenesis reprograms thermogenesis and PPARγ activation to decrease diet-induced obesity . Cell Metab 16:189–201.
CrossRef Google scholar
[55]
Lodhi IJ, Wei X, Yin L (2015) Peroxisomal lipid synthesis regulates inflammation by sustaining neutrophil membrane phospholipid composition and viability . Cell Metab 21:51–64.
CrossRef Google scholar
[56]
Lohner K (1996) Is the high propensity of ethanolamine plasmalogens to form non-lamellar lipid structures manifested in the properties of biomembranes ? Chem Phys Lipids 81:167–184
CrossRef Google scholar
[57]
Luoma AM, Kuo F, Cakici O (2015) Plasmalogen phospholipids protect internodal myelin from oxidative damage . Free Radic Biol Med 84:296–310.
CrossRef Google scholar
[58]
Maeba R, Sawada Y, Shimasaki H (2002) Ethanolamine plasmalogens protect cholesterol-rich liposomal membranes from oxidation caused by free radicals . Chem Phys Lipids 120:145–151
CrossRef Google scholar
[59]
Marrink S-J, Mark AE (2004) Molecular view of hexagonal phase formation in phospholipid membranes . Biophys J 87:3894–3900.
CrossRef Google scholar
[60]
McIntyre TM, Pontsler AV, Silva AR (2003) Identification of an intracellular receptor for lysophosphatidic acid (LPA): LPA is a transcellular PPARγ agonist . Proc Natl Acad Sci 100:131–136
CrossRef Google scholar
[61]
Morand OH, Zoeller RA, Raetz CR (1988) Disappearance of plasmalogens from membranes of animal cells subjected to photosensitized oxidation . J Biol Chem 263:11597–11606
[62]
Motley AM, Hettema EH, Hogenhout EM (1997) Rhizomelic chondrodysplasia punctata is a peroxisomal protein targeting disease caused by a non-functional PTS2 receptor . Nat Genet 15:377–380
CrossRef Google scholar
[63]
Mueller HW, O’Flaherty JT, Wykle RL (1982) Ether lipid content and fatty acid distribution in rabbit polymorphonuclear neutrophil phospholipids . Lipids 17:72–77
CrossRef Google scholar
[64]
Mueller HW, O’Flaherty JT, Greene DG (1984) 1-O-alkyl-linked glycerophospholipids of human neutrophils: distribution of arachidonate and other acyl residues in the ether-linked and diacyl species . J Lipid Res 25:383–388
[65]
Munn NJ (2003) Deficiency in ethanolamine plasmalogen leads to altered cholesterol transport . J Lipid Res 44:182–192.
CrossRef Google scholar
[66]
Nagan N, Zoeller RA (2001) Plasmalogens: biosynthesis and functions . Prog Lipid Res 40:199–299
CrossRef Google scholar
[67]
Orešič M, Simell S, Sysi-Aho M (2008) Dysregulation of lipid and amino acid metabolism precedes islet autoimmunity in children who later progress to type 1 diabetes .J Exp Med 205:2975–2984.
CrossRef Google scholar
[68]
Paltauf F (1994) Ether lipids in biomembranes . Chem Phys Lipids 74:101–139
CrossRef Google scholar
[69]
Piano V, Benjamin DI, Valente S (2015) Discovery of inhibitors for the ether lipid-generating enzyme AGPS as anti-cancer agents . ACS ChemBiol 10:2589–2597.
CrossRef Google scholar
[70]
Pietiläinen KH, Sysi-Aho M, Rissanen A (2007) Acquired obesity is associated with changes in the serum lipidomic profile independent of genetic effects—a monozygotic twin study . PLoS ONE 2:e218.
CrossRef Google scholar
[71]
Pietiläinen KH, Róg T, Seppänen-Laakso T (2011) Association of lipidome remodeling in the adipocyte membrane with acquired obesity in humans . PLoS Biol 9:e1000623.
CrossRef Google scholar
[72]
Pike LJ, Han X, Chung K-N, Gross RW (2002) Lipid rafts are enriched in arachidonic acid and plasmenylethanolamine and their composition is independent of Caveolin-1 expression: a quantitative electrospray ionization/mass spectrometric analysis† . Biochemistry (Mosc) 41:2075–2088.
CrossRef Google scholar
[73]
Purdue PE (1997) Rhizomelic chondrodysplasia punctata is caused by deficiency of human PEX7, a homologue of the yeast PTSZ . Nat Genet 15:381
CrossRef Google scholar
[74]
Puri P, Wiest MM, Cheung O (2009) The plasma lipidomic signature of nonalcoholic steatohepatitis . Hepatology 50:1827–1838
CrossRef Google scholar
[75]
Rasmiena AA, Barlow CK, Stefanovic N (2015) Plasmalogen modulation attenuates atherosclerosis in ApoE- and ApoE/GPx1-deficient mice . Atherosclerosis 243:598–608.
CrossRef Google scholar
[76]
Reiss D, Beyer K, Engelmann B (1997) Delayed oxidative degradation of polyunsaturated diacyl phospholipids in the presence of plasmalogen phospholipids in vitro . Biochem J 323:807–814
CrossRef Google scholar
[77]
Rodemer C, Thai T-P, Brugger B (2003) Inactivation of ether lipid biosynthesis causes male infertility, defects in eye development and optic nerve hypoplasia in mice . Hum Mol Genet 12:1881–1895.
CrossRef Google scholar
[78]
RooS DS, Choppin PW (1984) Tumorigenicity of cell lines with altered lipid composition . Proc Natl Acad Sci 81:7622–7626
CrossRef Google scholar
[79]
Skaff O, Pattison DI, Davies MJ (2008) The vinyl ether linkages of plasmalogens are favored targets for myeloperoxidase-derived oxidants: a kinetic study† . Biochemistry (Mosc) 47:8237–8245.
CrossRef Google scholar
[80]
Snyder F (1999) The ether lipid trail: a historical perspective . Biochim Biophys Acta BBA Mol Cell Biol Lipids 1436:265–278
CrossRef Google scholar
[81]
Snyder F, Wood R (1969) Alkyl and alk-1-enyl ethers of glycerol in lipids from normal and neoplastic human tissues . Cancer Res 29:251–257
[82]
Snyder F, Cress EA, Stephens N (1966) An unidentified lipid prevalent in tumors . Lipids 1:381–386
CrossRef Google scholar
[83]
Snyder F, Blank ML, Morris HP (1969) Occurrence and nature of O-alkyl and O-alk-1-enyl moieties of glycerol in lipids of Morris transplanted hepatomas and normal rat liver . Biochim Biophys Acta BBA Lipids Lipid Metab 176:502–510
CrossRef Google scholar
[84]
Steinberg SJ, Raymond GV, Braverman NE, Moser AB (2012) Peroxisome biogenesis disorders, Zellweger syndrome spectrum.
[85]
Teigler A, Komljenovic D, Draguhn A (2009) Defects in myelination, paranode organization and Purkinje cell innervation in the ether lipid-deficient mouse cerebellum . Hum Mol Genet 18:1897–1908.
CrossRef Google scholar
[86]
Tessier C, Sweers K, Frajerman A (2016) Membrane lipidomics in schizophrenia patients: a correlational study with clinical and cognitive manifestations . Transl Psychiatry 6:e906.
CrossRef Google scholar
[87]
Thukkani AK, Hsu F-F, Crowley JR (2002) Reactive chlorinating species produced during neutrophil activation target tissue plasmalogens: Production Of The Chemoattractant, 2-Chlorohexadecanal . J Biol Chem 277:3842–3849.
CrossRef Google scholar
[88]
Tsukahara T, Tsukahara R, Yasuda S (2006) Different residues mediate recognition of 1-O-oleyllysophosphatidic acid and rosiglitazone in the ligand binding domain of peroxisome proliferatoractivated receptor . J Biol Chem 281:3398–3407.
CrossRef Google scholar
[89]
Tulodziecka K, Diaz-Rohrer BB, Farley MM (2016) Remodeling of the postsynaptic plasma membrane during neural development . Mol Biol Cell 27:3480–3489
CrossRef Google scholar
[90]
Volmer R, van der Ploeg K, Ron D (2013) Membrane lipid saturation activates endoplasmic reticulum unfolded protein response transducers through their transmembrane domains . Proc Natl Acad Sci 110:4628–4633.
CrossRef Google scholar
[91]
Wang G, Wang T (2010) The role of plasmalogen in the oxidative stability of neutral lipids and phospholipids . J Agric Food Chem 58:2554–2561.
CrossRef Google scholar
[92]
White AL, Modaff P, Holland-Morris F, Pauli RM (2003) Natural history of rhizomelic chondrodysplasia punctata . Am J Med Genet 118A:332–342.
CrossRef Google scholar
[93]
Wood P, mankidy R, Ritchie S (2010) Circulating plasmalogen levels and Alzheimer disease assessment scale-cognitive scores in Alzheimer patients . J Psychiatry Neurosci 35:59–62.
CrossRef Google scholar
[94]
Wood PL, Locke VA, Herling P (2016) Targeted lipidomics distinguishes patient subgroups in mild cognitive impairment (MCI) and late onset Alzheimer’s disease (LOAD) . BBA Clin 5:25–28.
CrossRef Google scholar
[95]
Yamashita S, Kanno S, Nakagawa K (2015a) Extrinsic plasmalogens suppress neuronal apoptosis in mouse neuroblastoma Neuro-2A cells: importance of plasmalogen molecular species . RSC Adv 5:61012–61020.
CrossRef Google scholar
[96]
Yamashita S, Kiko T, Fujiwara H (2015b) Alterations in the levels of amyloid-β, phospholipid hydroperoxide, and plasmalogen in the blood of patients with Alzheimer’s disease: possible interactions between amyloid-β and these lipids . J Alzheimers Dis 50:527–537.
CrossRef Google scholar
[97]
Yen C-LE, Mar M, Zeisel SH (1999) Choline deficiency-induced apoptosis in PC12 cells is associated with diminished membrane phosphatidylcholine and sphingomyelin, accumulation of ceramide and diacylglycerol, and activation of a caspase . FASEB J 13:135–142
CrossRef Google scholar
[98]
Zhang C, Baker DL, Yasuda S (2004) Lysophosphatidic acid induces neointima formation through PPARγ activation . J Exp Med 199:763–774.
CrossRef Google scholar
[99]
Zoeller RA, Morand OH, Raetz CR (1988) A possible role for plasmalogens in protecting animal cells against photosensitized killing . J Biol Chem 263:11590–11596

RIGHTS & PERMISSIONS

2017 The Author(s) 2017. This article is an open access publication
AI Summary AI Mindmap
PDF(732 KB)

Accesses

Citations

Detail

Sections
Recommended

/