Literature DB >> 25168382

A novel bile acid biosynthesis defect due to a deficiency of peroxisomal ABCD3.

Sacha Ferdinandusse1, Gerardo Jimenez-Sanchez2, Janet Koster3, Simone Denis3, Carlo W Van Roermund3, Irma Silva-Zolezzi4, Ann B Moser5, Wouter F Visser3, Mine Gulluoglu6, Ozlem Durmaz7, Mubeccel Demirkol8, Hans R Waterham3, Gülden Gökcay8, Ronald J A Wanders3, David Valle2.   

Abstract

ABCD3 is one of three ATP-binding cassette (ABC) transporters present in the peroxisomal membrane catalyzing ATP-dependent transport of substrates for metabolic pathways localized in peroxisomes. So far, the precise function of ABCD3 is not known. Here, we report the identification of the first patient with a defect of ABCD3. The patient presented with hepatosplenomegaly and severe liver disease and showed a striking accumulation of peroxisomal C27-bile acid intermediates in plasma. Investigation of peroxisomal parameters in skin fibroblasts revealed a reduced number of enlarged import-competent peroxisomes. Peroxisomal beta-oxidation of C26:0 was normal, but beta-oxidation of pristanic acid was reduced. Genetic analysis revealed a homozygous deletion at the DNA level of 1758bp, predicted to result in a truncated ABCD3 protein lacking the C-terminal 24 amino acids (p.Y635NfsX1). Liver disease progressed and the patient required liver transplantation at 4 years of age but expired shortly after transplantation. To corroborate our findings in the patient, we studied a previously generated Abcd3 knockout mouse model. Abcd3-/- mice accumulated the branched chain fatty acid phytanic acid after phytol loading. In addition, analysis of bile acids revealed a reduction of C24 bile acids, whereas C27-bile acid intermediates were significantly increased in liver, bile and intestine of Abcd3-/- mice. Thus, both in the patient and in Abcd3-/- mice, there was evidence of a bile acid biosynthesis defect. In conclusion, our studies show that ABCD3 is involved in transport of branched-chain fatty acids and C27 bile acids into the peroxisome and that this is a crucial step in bile acid biosynthesis.
© The Author 2014. Published by Oxford University Press. All rights reserved. For Permissions, please email: journals.permissions@oup.com.

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Year:  2014        PMID: 25168382     DOI: 10.1093/hmg/ddu448

Source DB:  PubMed          Journal:  Hum Mol Genet        ISSN: 0964-6906            Impact factor:   6.150


  41 in total

1.  C22-bronchial and T7-alveolar epithelial cell lines of the immortomouse are excellent murine cell culture model systems to study pulmonary peroxisome biology and metabolism.

Authors:  Srikanth Karnati; Saranya Palaniswamy; Mohammad Rashedul Alam; Gani Oruqaj; Cordula Stamme; Eveline Baumgart-Vogt
Journal:  Histochem Cell Biol       Date:  2015-12-21       Impact factor: 4.304

2.  Long-chain acyl-CoA synthetase 1 interacts with key proteins that activate and direct fatty acids into niche hepatic pathways.

Authors:  Pamela A Young; Can E Senkal; Amanda L Suchanek; Trisha J Grevengoed; Dennis D Lin; Liyang Zhao; Amanda E Crunk; Eric L Klett; Joachim Füllekrug; Lina M Obeid; Rosalind A Coleman
Journal:  J Biol Chem       Date:  2018-09-06       Impact factor: 5.157

Review 3.  Fatty Acid Oxidation in Peroxisomes: Enzymology, Metabolic Crosstalk with Other Organelles and Peroxisomal Disorders.

Authors:  Ronald J A Wanders; Frédéric M Vaz; Hans R Waterham; Sacha Ferdinandusse
Journal:  Adv Exp Med Biol       Date:  2020       Impact factor: 2.622

4.  Peroxisome turnover and diurnal modulation of antioxidant activity in retinal pigment epithelia utilizes microtubule-associated protein 1 light chain 3B (LC3B).

Authors:  Lauren L Daniele; Jennifer Caughey; Stefanie Volland; Rachel C Sharp; Anuradha Dhingra; David S Williams; Nancy J Philp; Kathleen Boesze-Battaglia
Journal:  Am J Physiol Cell Physiol       Date:  2019-10-02       Impact factor: 4.249

5.  Lipidomics unveils lipid dyshomeostasis and low circulating plasmalogens as biomarkers in a monogenic mitochondrial disorder.

Authors:  Matthieu Ruiz; Alexanne Cuillerier; Caroline Daneault; Sonia Deschênes; Isabelle Robillard Frayne; Bertrand Bouchard; Anik Forest; Julie Thompson Legault; Frederic M Vaz; John D Rioux; Yan Burelle; Christine Des Rosiers
Journal:  JCI Insight       Date:  2019-07-25

6.  ACOX2 deficiency: A disorder of bile acid synthesis with transaminase elevation, liver fibrosis, ataxia, and cognitive impairment.

Authors:  Sílvia Vilarinho; Sinan Sari; Francesca Mazzacuva; Kaya Bilgüvar; Güldal Esendagli-Yilmaz; Dhanpat Jain; Gülen Akyol; Buket Dalgiç; Murat Günel; Peter T Clayton; Richard P Lifton
Journal:  Proc Natl Acad Sci U S A       Date:  2016-09-19       Impact factor: 11.205

7.  Peroxisomes can oxidize medium- and long-chain fatty acids through a pathway involving ABCD3 and HSD17B4.

Authors:  Sara Violante; Nihad Achetib; Carlo W T van Roermund; Jacob Hagen; Tetyana Dodatko; Frédéric M Vaz; Hans R Waterham; Hongjie Chen; Myriam Baes; Chunli Yu; Carmen A Argmann; Sander M Houten
Journal:  FASEB J       Date:  2018-12-12       Impact factor: 5.191

8.  Peroxisomal ATP-binding cassette transporters form mainly tetramers.

Authors:  Flore Geillon; Catherine Gondcaille; Quentin Raas; Alexandre M M Dias; Delphine Pecqueur; Caroline Truntzer; Géraldine Lucchi; Patrick Ducoroy; Pierre Falson; Stéphane Savary; Doriane Trompier
Journal:  J Biol Chem       Date:  2017-03-03       Impact factor: 5.157

9.  Laboratory diagnosis of disorders of peroxisomal biogenesis and function: a technical standard of the American College of Medical Genetics and Genomics (ACMG).

Authors:  Irene De Biase; Silvia Tortorelli; Lisa Kratz; Steven J Steinberg; Kristina Cusmano-Ozog; Nancy Braverman
Journal:  Genet Med       Date:  2019-12-11       Impact factor: 8.822

Review 10.  Peroxisome-mitochondria interplay and disease.

Authors:  Michael Schrader; Joseph Costello; Luis F Godinho; Markus Islinger
Journal:  J Inherit Metab Dis       Date:  2015-02-17       Impact factor: 4.982

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