Literature DB >> 17909855

Overexpression of CYP710A1 and CYP710A4 in transgenic Arabidopsis plants increases the level of stigmasterol at the expense of sitosterol.

Lisa Arnqvist1, Mattias Persson, Lisbeth Jonsson, Paresh C Dutta, Folke Sitbon.   

Abstract

Sitosterol and stigmasterol are major sterols in vascular plants. An altered stigmasterol:sitosterol ratio has been proposed to influence the properties of cell membranes, particularly in relation to various stresses, but biosynthesis of stigmasterol is poorly understood. Recently, however, Morikawa et al. (Plant Cell 18:1008-1022, 2006) showed in Arabidopsis thaliana that synthesis of stigmasterol and brassicasterol is catalyzed by two separate sterol C-22 desaturases, encoded by the genes CYP710A1 and CYP710A2, respectively. The proteins belong to a small cytochrome P450 subfamily having four members, denoted by CYP710A1-A4, and are related to the yeast sterol C-22 desaturase Erg5p acting in ergosterol synthesis. Here, we report on our parallel investigation of the Arabidopsis CYP710A family. To elucidate the function of CYP710A proteins, transgenic Arabidopsis plants were generated overexpressing CYP710A1 and CYP710A4. Compared to wild-type plants, both types of transformant displayed a normal phenotype, but contained increased levels of free stigmasterol and a concomitant decrease in the level of free sitosterol. CYP710A1 transformants also displayed higher levels of esterified forms of stigmasterol, cholesterol, 24-methylcholesterol and isofucosterol. The results confirm the findings of Morikawa et al. (Plant Cell 18:1008-1022, 2006) regarding the function of CYP710A1 in stigmasterol synthesis, and show that CYP710A4 also has this capacity. Furthermore, our results suggest that an increased stigmasterol level alone is sufficient to stimulate esterification of other major sterols.

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Year:  2007        PMID: 17909855     DOI: 10.1007/s00425-007-0618-8

Source DB:  PubMed          Journal:  Planta        ISSN: 0032-0935            Impact factor:   4.116


  21 in total

1.  [Sterols of mulberry leaves and small leaf curl disease].

Authors:  N E Zambakhidze; K V Sulaberindze; V V Mzhavanadze; G Ch Tsiklauri
Journal:  Prikl Biokhim Mikrobiol       Date:  2005 Jul-Aug

Review 2.  The role of sterols in plant growth and development.

Authors:  Hubert Schaller
Journal:  Prog Lipid Res       Date:  2003-05       Impact factor: 16.195

3.  Shading Influence on the Sterol Balance of Nicotiana tabacum L.

Authors:  C Grunwald
Journal:  Plant Physiol       Date:  1978-01       Impact factor: 8.340

4.  The ratio of campesterol to sitosterol that modulates growth in Arabidopsis is controlled by STEROL METHYLTRANSFERASE 2;1.

Authors:  A Schaeffer; R Bronner; P Benveniste; H Schaller
Journal:  Plant J       Date:  2001-03       Impact factor: 6.417

Review 5.  Sterol methyl transferase: enzymology and inhibition.

Authors:  W D Nes
Journal:  Biochim Biophys Acta       Date:  2000-12-15

6.  Cellular sterol ester synthesis in plants is performed by an enzyme (phospholipid:sterol acyltransferase) different from the yeast and mammalian acyl-CoA:sterol acyltransferases.

Authors:  Antoni Banas; Anders S Carlsson; Bangquan Huang; Marit Lenman; Walentyna Banas; Michael Lee; Alexandre Noiriel; Pierre Benveniste; Hubert Schaller; Pierrette Bouvier-Navé; Sten Stymne
Journal:  J Biol Chem       Date:  2005-07-14       Impact factor: 5.157

7.  Sterol C-24 methyltransferase type 1 controls the flux of carbon into sterol biosynthesis in tobacco seed.

Authors:  Niklas Holmberg; Mark Harker; Carl L Gibbard; Andrew D Wallace; John C Clayton; Sally Rawlins; Amanda Hellyer; Richard Safford
Journal:  Plant Physiol       Date:  2002-09       Impact factor: 8.340

8.  Plant sterol biosynthesis: identification of two distinct families of sterol 4alpha-methyl oxidases.

Authors:  Sylvain Darnet; Alain Rahier
Journal:  Biochem J       Date:  2004-03-15       Impact factor: 3.857

9.  Cytochrome P450 CYP710A encodes the sterol C-22 desaturase in Arabidopsis and tomato.

Authors:  Tomomi Morikawa; Masaharu Mizutani; Nozomu Aoki; Bunta Watanabe; Hirohisa Saga; Shigeki Saito; Akira Oikawa; Hideyuki Suzuki; Nozomu Sakurai; Daisuke Shibata; Akira Wadano; Kanzo Sakata; Daisaku Ohta
Journal:  Plant Cell       Date:  2006-03-10       Impact factor: 11.277

10.  Reduction of cholesterol and glycoalkaloid levels in transgenic potato plants by overexpression of a type 1 sterol methyltransferase cDNA.

Authors:  Lisa Arnqvist; Paresh C Dutta; Lisbeth Jonsson; Folke Sitbon
Journal:  Plant Physiol       Date:  2003-04       Impact factor: 8.340

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  15 in total

1.  Cytochromes p450.

Authors:  Søren Bak; Fred Beisson; Gerard Bishop; Björn Hamberger; René Höfer; Suzanne Paquette; Danièle Werck-Reichhart
Journal:  Arabidopsis Book       Date:  2011-10-06

2.  A new insight into application for barley chromosome addition lines of common wheat: achievement of stigmasterol accumulation.

Authors:  Jianwei Tang; Kiyoshi Ohyama; Kanako Kawaura; Hiromi Hashinokuchi; Yoko Kamiya; Masashi Suzuki; Toshiya Muranaka; Yasunari Ogihara
Journal:  Plant Physiol       Date:  2011-09-27       Impact factor: 8.340

3.  Human cytochrome P450 27C1 catalyzes 3,4-desaturation of retinoids.

Authors:  Valerie M Kramlinger; Leslie D Nagy; Rina Fujiwara; Kevin M Johnson; Thanh T N Phan; Yi Xiao; Jennifer M Enright; Matthew B Toomey; Joseph C Corbo; Frederick Peter Guengerich
Journal:  FEBS Lett       Date:  2016-04-17       Impact factor: 4.124

4.  Human mitochondrial cytochrome P450 27C1 is localized in skin and preferentially desaturates trans-retinol to 3,4-dehydroretinol.

Authors:  Kevin M Johnson; Thanh T N Phan; Matthew E Albertolle; F Peter Guengerich
Journal:  J Biol Chem       Date:  2017-07-12       Impact factor: 5.157

5.  AtCYP710A1 gene-mediated stigmasterol production plays a role in imparting temperature stress tolerance in Arabidopsis thaliana.

Authors:  Muthappa Senthil-Kumar; Keri Wang; Kirankumar S Mysore
Journal:  Plant Signal Behav       Date:  2013-01-08

6.  Phytosterols play a key role in plant innate immunity against bacterial pathogens by regulating nutrient efflux into the apoplast.

Authors:  Keri Wang; Muthappa Senthil-Kumar; Choong-Min Ryu; Li Kang; Kirankumar S Mysore
Journal:  Plant Physiol       Date:  2012-01-31       Impact factor: 8.340

Review 7.  Plant lipid environment and membrane enzymes: the case of the plasma membrane H+-ATPase.

Authors:  Francisco Morales-Cedillo; Ariadna González-Solís; Lizbeth Gutiérrez-Angoa; Dora Luz Cano-Ramírez; Marina Gavilanes-Ruiz
Journal:  Plant Cell Rep       Date:  2015-01-11       Impact factor: 4.570

8.  Differential effect of plant lipids on membrane organization: specificities of phytosphingolipids and phytosterols.

Authors:  Kevin Grosjean; Sébastien Mongrand; Laurent Beney; Françoise Simon-Plas; Patricia Gerbeau-Pissot
Journal:  J Biol Chem       Date:  2015-01-09       Impact factor: 5.157

9.  Suppressing Farnesyl Diphosphate Synthase Alters Chloroplast Development and Triggers Sterol-Dependent Induction of Jasmonate- and Fe-Related Responses.

Authors:  David Manzano; Paola Andrade; Daniel Caudepón; Teresa Altabella; Montserrat Arró; Albert Ferrer
Journal:  Plant Physiol       Date:  2016-07-05       Impact factor: 8.340

10.  In silico metabolic network analysis of Arabidopsis leaves.

Authors:  Veronique Beckers; Lisa Maria Dersch; Katrin Lotz; Guido Melzer; Oliver Ernst Bläsing; Regine Fuchs; Thomas Ehrhardt; Christoph Wittmann
Journal:  BMC Syst Biol       Date:  2016-10-29
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