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A mutation of EPT1 (SELENOI) underlies a new disorder of Kennedy pathway phospholipid biosynthesis.
Ahmed, Mustafa Y; Al-Khayat, Aisha; Al-Murshedi, Fathiya; Al-Futaisi, Amna; Chioza, Barry A; Pedro Fernandez-Murray, J; Self, Jay E; Salter, Claire G; Harlalka, Gaurav V; Rawlins, Lettie E; Al-Zuhaibi, Sana; Al-Azri, Faisal; Al-Rashdi, Fatma; Cazenave-Gassiot, Amaury; Wenk, Markus R; Al-Salmi, Fatema; Patton, Michael A; Silver, David L; Baple, Emma L; McMaster, Christopher R; Crosby, Andrew H.
Afiliação
  • Ahmed MY; Medical Research (Level 4), University of Exeter Medical School, RILD Wellcome Wolfson Centre, Royal Devon and Exeter NHS Foundation Trust, Barrack Road, Exeter, EX2 5DW, UK.
  • Al-Khayat A; Department of Biology, College of Science, Sultan Qaboos University, Sultanate of Oman.
  • Al-Murshedi F; Department of Genetics, College of Medicine, Sultan Qaboos University, Sultanate of Oman.
  • Al-Futaisi A; Department of Paediatrics, Sultan Qaboos University Hospital, Sultanate of Oman.
  • Chioza BA; Medical Research (Level 4), University of Exeter Medical School, RILD Wellcome Wolfson Centre, Royal Devon and Exeter NHS Foundation Trust, Barrack Road, Exeter, EX2 5DW, UK.
  • Pedro Fernandez-Murray J; Department of Pharmacology, Dalhousie University, Halifax, NS, B3H 4H7, Canada.
  • Self JE; Faculty of Medicine, University of Southampton, UK.
  • Salter CG; West Midlands Regional Genetics Service, Birmingham Women's NHS Foundation Trust, Mindelsohn Way, Birmingham, B15 2TG, UK.
  • Harlalka GV; Medical Research (Level 4), University of Exeter Medical School, RILD Wellcome Wolfson Centre, Royal Devon and Exeter NHS Foundation Trust, Barrack Road, Exeter, EX2 5DW, UK.
  • Rawlins LE; Medical Research (Level 4), University of Exeter Medical School, RILD Wellcome Wolfson Centre, Royal Devon and Exeter NHS Foundation Trust, Barrack Road, Exeter, EX2 5DW, UK.
  • Al-Zuhaibi S; Department of Ophthalmology, Sultan Qaboos University Hospital, Sultanate of Oman.
  • Al-Azri F; Department of Radiology and Molecular Imaging, Sultan Qaboos University Hospital, Sultanate of Oman.
  • Al-Rashdi F; Department of Paediatrics, Sameal Hospital, Ministry of Health, Sultanate of Oman.
  • Cazenave-Gassiot A; SLING, Life Sciences Institute, National University of Singapore, Singapore.
  • Wenk MR; Department of Biochemistry, National University of Singapore, Singapore.
  • Al-Salmi F; SLING, Life Sciences Institute, National University of Singapore, Singapore.
  • Patton MA; Department of Biochemistry, National University of Singapore, Singapore.
  • Silver DL; Department of Biology, College of Science, Sultan Qaboos University, Sultanate of Oman.
  • Baple EL; Medical Research (Level 4), University of Exeter Medical School, RILD Wellcome Wolfson Centre, Royal Devon and Exeter NHS Foundation Trust, Barrack Road, Exeter, EX2 5DW, UK.
  • McMaster CR; Department of Biology, College of Science, Sultan Qaboos University, Sultanate of Oman.
  • Crosby AH; Signature Research Program in Cardiovascular and Metabolic Disorders, Duke-NUS Medical School, Singapore.
Brain ; 140(3): 547-554, 2017 03 01.
Article em En | MEDLINE | ID: mdl-28052917
ABSTRACT
Mutations in genes involved in lipid metabolism have increasingly been associated with various subtypes of hereditary spastic paraplegia, a highly heterogeneous group of neurodegenerative motor neuron disorders characterized by spastic paraparesis. Here, we report an unusual autosomal recessive neurodegenerative condition, best classified as a complicated form of hereditary spastic paraplegia, associated with mutation in the ethanolaminephosphotransferase 1 (EPT1) gene (now known as SELENOI), responsible for the final step in Kennedy pathway forming phosphatidylethanolamine from CDP-ethanolamine. Phosphatidylethanolamine is a glycerophospholipid that, together with phosphatidylcholine, constitutes more than half of the total phospholipids in eukaryotic cell membranes. We determined that the mutation defined dramatically reduces the enzymatic activity of EPT1, thereby hindering the final step in phosphatidylethanolamine synthesis. Additionally, due to central nervous system inaccessibility we undertook quantification of phosphatidylethanolamine levels and species in patient and control blood samples as an indication of liver phosphatidylethanolamine biosynthesis. Although this revealed alteration to levels of specific phosphatidylethanolamine fatty acyl species in patients, overall phosphatidylethanolamine levels were broadly unaffected indicating that in blood EPT1 inactivity may be compensated for, in part, via alternate biochemical pathways. These studies define the first human disorder arising due to defective CDP-ethanolamine biosynthesis and provide new insight into the role of Kennedy pathway components in human neurological function.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Fosfolipídeos / Transdução de Sinais / Paraplegia Espástica Hereditária / Etanolaminofosfotransferase / Mutação Limite: Adolescent / Child / Child, preschool / Female / Humans / Infant / Male País/Região como assunto: Asia Idioma: En Revista: Brain Ano de publicação: 2017 Tipo de documento: Article País de afiliação: Reino Unido

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Fosfolipídeos / Transdução de Sinais / Paraplegia Espástica Hereditária / Etanolaminofosfotransferase / Mutação Limite: Adolescent / Child / Child, preschool / Female / Humans / Infant / Male País/Região como assunto: Asia Idioma: En Revista: Brain Ano de publicação: 2017 Tipo de documento: Article País de afiliação: Reino Unido