Literature DB >> 26065859

The fatty acid desaturase 2 (FADS2) gene product catalyzes Δ4 desaturation to yield n-3 docosahexaenoic acid and n-6 docosapentaenoic acid in human cells.

Hui Gyu Park1, Woo Jung Park1, Kumar S D Kothapalli2, J Thomas Brenna2.   

Abstract

Docosahexaenoic acid (DHA) is a Δ4-desaturated C22 fatty acid and the limiting highly unsaturated fatty acid (HUFA) in neural tissue. The biosynthesis of Δ4-desaturated docosanoid fatty acids 22:6n-3 and 22:5n-6 are believed to proceed via a circuitous biochemical pathway requiring repeated use of a fatty acid desaturase 2 (FADS2) protein to perform Δ6 desaturation on C24 fatty acids in the endoplasmic reticulum followed by 1 round of β-oxidation in the peroxisomes. We demonstrate here that the FADS2 gene product can directly Δ4-desaturate 22:5n-3→22:6n-3 (DHA) and 22:4n-6→22:5n-6. Human MCF-7 cells lacking functional FADS2-mediated Δ6-desaturase were stably transformed with FADS2, FADS1, or empty vector. When incubated with 22:5n-3 or 22:4n-6, FADS2 stable cells produce 22:6n-3 or 22:5n-6, respectively. Similarly, FADS2 stable cells when incubated with d5-18:3n-3 show synthesis of d5-22:6n-3 with no labeling of 24:5n-3 or 24:6n-3 at 24 h. Further, both C24 fatty acids are shown to be products of the respective C22 fatty acids via elongation. Our results demonstrate that the FADS2 classical transcript mediates direct Δ4 desaturation to yield 22:6n-3 and 22:5n-6 in human cells, as has been widely shown previously for desaturation by fish and many other organisms. © FASEB.

Entities:  

Keywords:  metabolism; nutrition; polyunsaturated fatty acids; Δ6 desaturation

Mesh:

Substances:

Year:  2015        PMID: 26065859      PMCID: PMC4550368          DOI: 10.1096/fj.15-271783

Source DB:  PubMed          Journal:  FASEB J        ISSN: 0892-6638            Impact factor:   5.191


  59 in total

1.  A novel FADS1 isoform potentiates FADS2-mediated production of eicosanoid precursor fatty acids.

Authors:  Woo Jung Park; Kumar S D Kothapalli; Holly T Reardon; Peter Lawrence; Shu-Bing Qian; J Thomas Brenna
Journal:  J Lipid Res       Date:  2012-05-22       Impact factor: 5.922

Review 2.  Efficiency of conversion of alpha-linolenic acid to long chain n-3 fatty acids in man.

Authors:  J Thomas Brenna
Journal:  Curr Opin Clin Nutr Metab Care       Date:  2002-03       Impact factor: 4.294

3.  Metabolism of fatty acids and their incorporation into phospholipids of the mitochondria and endoplasmic reticulum in isolated hepatocytes determined by isolation of fluorescence derivatives.

Authors:  A Jakobsson; J Ericsson; G Dallner
Journal:  Biochim Biophys Acta       Date:  1990-10-01

4.  In vivo conversion of 18- and 20-C essential fatty acids in rats using the multiple simultaneous stable isotope method.

Authors:  Yu Hong Lin; Norman Salem
Journal:  J Lipid Res       Date:  2005-06-01       Impact factor: 5.922

5.  The capacity for long-chain polyunsaturated fatty acid synthesis in a carnivorous vertebrate: Functional characterisation and nutritional regulation of a Fads2 fatty acyl desaturase with Δ4 activity and an Elovl5 elongase in striped snakehead (Channa striata).

Authors:  Meng-Kiat Kuah; Annette Jaya-Ram; Alexander Chong Shu-Chien
Journal:  Biochim Biophys Acta       Date:  2014-12-24

6.  Lipid needs of preterm infants: updated recommendations.

Authors:  Alexandre Lapillonne; Sharon Groh-Wargo; Carlos H Lozano Gonzalez; Ricardo Uauy
Journal:  J Pediatr       Date:  2013-03       Impact factor: 4.406

7.  Biosynthesis of docosahexaenoic acid in Euglena gracilis: biochemical and molecular evidence for the involvement of a Delta4-fatty acyl group desaturase.

Authors:  Astrid Meyer; Petra Cirpus; Claudia Ott; Rainer Schlecker; Ulrich Zähringer; Ernst Heinz
Journal:  Biochemistry       Date:  2003-08-19       Impact factor: 3.162

Review 8.  Fatty acid analysis by high resolution gas chromatography and mass spectrometry for clinical and experimental applications.

Authors:  J Thomas Brenna
Journal:  Curr Opin Clin Nutr Metab Care       Date:  2013-09       Impact factor: 4.294

9.  The metabolism of 7,10,13,16,19-docosapentaenoic acid to 4,7,10,13,16,19-docosahexaenoic acid in rat liver is independent of a 4-desaturase.

Authors:  A Voss; M Reinhart; S Sankarappa; H Sprecher
Journal:  J Biol Chem       Date:  1991-10-25       Impact factor: 5.157

10.  The influence of long chain polyunsaturate supplementation on docosahexaenoic acid and arachidonic acid in baboon neonate central nervous system.

Authors:  Guan-Yeu Diau; Andrea T Hsieh; Eszter A Sarkadi-Nagy; Vasuki Wijendran; Peter W Nathanielsz; J Thomas Brenna
Journal:  BMC Med       Date:  2005-06-23       Impact factor: 8.775

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  56 in total

1.  Dietary pattern regulates fatty acid desaturase 1 gene expression in Indian pregnant women to spare overall long chain polyunsaturated fatty acids levels.

Authors:  Kalpana Joshi; Maithili Gadgil; Anand Pandit; Suhas Otiv; Kumar S D Kothapalli; J Thomas Brenna
Journal:  Mol Biol Rep       Date:  2018-12-03       Impact factor: 2.316

2.  A rare eicosanoid precursor analogue, sciadonic acid (5Z,11Z,14Z-20:3), detected in vivo in hormone positive breast cancer tissue.

Authors:  H G Park; J Y Zhang; C Foster; D Sudilovsky; D A Schwed; J Mecenas; S Devapatla; P Lawrence; K S D Kothapalli; J T Brenna
Journal:  Prostaglandins Leukot Essent Fatty Acids       Date:  2018-05-16       Impact factor: 4.006

3.  Docosahexaenoic acid is both a product of and a precursor to tetracosahexaenoic acid in the rat.

Authors:  Adam H Metherel; R J Scott Lacombe; Raphaël Chouinard-Watkins; Richard P Bazinet
Journal:  J Lipid Res       Date:  2018-12-20       Impact factor: 5.922

4.  n-3 PUFAs improve erythrocyte fatty acid profile in patients with small AAA: a randomized controlled trial.

Authors:  Lara T Meital; Mark T Windsor; Rebecca M L Ramirez Jewell; Peter Young; Karl Schulze; Rebecca Magee; Jill O'Donnell; Pankaj Jha; Maria Perissiou; Jonathan Golledge; Tom G Bailey; Peter Brooks; Christopher D Askew; Fraser D Russell
Journal:  J Lipid Res       Date:  2019-03-26       Impact factor: 5.922

5.  Serum n-3 Tetracosapentaenoic Acid and Tetracosahexaenoic Acid Increase Following Higher Dietary α-Linolenic Acid but not Docosahexaenoic Acid.

Authors:  Adam H Metherel; Anthony F Domenichiello; Alex P Kitson; Yu-Hong Lin; Richard P Bazinet
Journal:  Lipids       Date:  2016-12-22       Impact factor: 1.880

6.  EPA, DHA, and Lipoic Acid Differentially Modulate the n-3 Fatty Acid Biosynthetic Pathway in Atlantic Salmon Hepatocytes.

Authors:  Marta Bou; Tone-Kari Østbye; Gerd M Berge; Bente Ruyter
Journal:  Lipids       Date:  2017-01-28       Impact factor: 1.880

7.  The elongation of very long-chain fatty acid 6 gene product catalyses elongation of n-13 : 0 and n-15 : 0 odd-chain SFA in human cells.

Authors:  Zhen Wang; Dong Hao Wang; Yuliya Goykhman; Yuanyuan Yan; Peter Lawrence; Kumar S D Kothapalli; J Thomas Brenna
Journal:  Br J Nutr       Date:  2019-01-03       Impact factor: 3.718

8.  Lack of ∆5 Desaturase Activity Impairs EPA and DHA Synthesis in Fish Cells from Red Sea Bream and Japanese Flounder.

Authors:  Hayato Nyunoya; Tatsuki Noda; You Kawamoto; Yasuhiro Hayashi; Yohei Ishibashi; Makoto Ito; Nozomu Okino
Journal:  Mar Biotechnol (NY)       Date:  2021-06-26       Impact factor: 3.619

9.  Palmitic acid (16:0) competes with omega-6 linoleic and omega-3 ɑ-linolenic acids for FADS2 mediated Δ6-desaturation.

Authors:  Hui Gyu Park; Kumar S D Kothapalli; Woo Jung Park; Christian DeAllie; Lei Liu; Allison Liang; Peter Lawrence; J Thomas Brenna
Journal:  Biochim Biophys Acta       Date:  2015-11-17

10.  PEMT, Δ6 desaturase, and palmitoyldocosahexaenoyl phosphatidylcholine are increased in rats during pregnancy.

Authors:  Alan Chalil; Alex P Kitson; Juan J Aristizabal Henao; Kristin A Marks; Jason L Elzinga; Daniel M E Lamontagne-Kam; Daniel Chalil; Flavia Badoud; David M Mutch; Ken D Stark
Journal:  J Lipid Res       Date:  2017-11-22       Impact factor: 5.922

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