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Items: 1 to 20 of 106

1.

Tocopherols modulate extraplastidic polyunsaturated fatty acid metabolism in Arabidopsis at low temperature.

Maeda H, Sage TL, Isaac G, Welti R, Dellapenna D.

Plant Cell. 2008 Feb;20(2):452-70. doi: 10.1105/tpc.107.054718. Epub 2008 Feb 26.

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Tocopherols play a crucial role in low-temperature adaptation and Phloem loading in Arabidopsis.

Maeda H, Song W, Sage TL, DellaPenna D.

Plant Cell. 2006 Oct;18(10):2710-32. Epub 2006 Sep 29.

5.

FAD2 and FAD3 desaturases form heterodimers that facilitate metabolic channeling in vivo.

Lou Y, Schwender J, Shanklin J.

J Biol Chem. 2014 Jun 27;289(26):17996-8007. doi: 10.1074/jbc.M114.572883. Epub 2014 May 8.

6.

Nonenzymatic lipid peroxidation reprograms gene expression and activates defense markers in Arabidopsis tocopherol-deficient mutants.

Sattler SE, Mène-Saffrané L, Farmer EE, Krischke M, Mueller MJ, DellaPenna D.

Plant Cell. 2006 Dec;18(12):3706-20. Epub 2006 Dec 28.

8.

The impact of alteration of polyunsaturated fatty acid levels on C6-aldehyde formation of Arabidopsis thaliana leaves.

Zhuang H, Hamilton-Kemp TR, Andersen RA, Hildebrand DF.

Plant Physiol. 1996 Jul;111(3):805-12.

9.

Non-redundant Contribution of the Plastidial FAD8 ω-3 Desaturase to Glycerolipid Unsaturation at Different Temperatures in Arabidopsis.

Román Á, Hernández ML, Soria-García Á, López-Gomollón S, Lagunas B, Picorel R, Martínez-Rivas JM, Alfonso M.

Mol Plant. 2015 Nov 2;8(11):1599-611. doi: 10.1016/j.molp.2015.06.004. Epub 2015 Jun 14.

10.

Role of callose synthases in transfer cell wall development in tocopherol deficient Arabidopsis mutants.

Maeda H, Song W, Sage T, Dellapenna D.

Front Plant Sci. 2014 Feb 19;5:46. doi: 10.3389/fpls.2014.00046. eCollection 2014.

12.

Role of salicylic acid and fatty acid desaturation pathways in ssi2-mediated signaling.

Kachroo P, Venugopal SC, Navarre DA, Lapchyk L, Kachroo A.

Plant Physiol. 2005 Dec;139(4):1717-35. Epub 2005 Nov 23.

13.

Arabidopsis mutants reveal that short- and long-term thermotolerance have different requirements for trienoic fatty acids.

Routaboul JM, Skidmore C, Wallis JG, Browse J.

J Exp Bot. 2012 Feb;63(3):1435-43. doi: 10.1093/jxb/err381. Epub 2011 Dec 3.

14.

Enhancement of α-linolenic acid content in transgenic tobacco seeds by targeting a plastidial ω-3 fatty acid desaturase (fad7) gene of Sesamum indicum to ER.

Bhunia RK, Chakraborty A, Kaur R, Maiti MK, Sen SK.

Plant Cell Rep. 2016 Jan;35(1):213-26. doi: 10.1007/s00299-015-1880-z. Epub 2015 Oct 31.

PMID:
26521211
15.

Tocopherols and ER fatty acid metabolism.

Eckardt NA.

Plant Cell. 2008 Feb;20(2):246. doi: 10.1105/tpc.108.200212. Epub 2008 Feb 26. No abstract available.

16.

Nonenzymatic oxidation of trienoic fatty acids contributes to reactive oxygen species management in Arabidopsis.

Mène-Saffrané L, Dubugnon L, Chételat A, Stolz S, Gouhier-Darimont C, Farmer EE.

J Biol Chem. 2009 Jan 16;284(3):1702-8. doi: 10.1074/jbc.M807114200. Epub 2008 Nov 6.

17.

Vitamin E biosynthesis: functional characterization of the monocot homogentisate geranylgeranyl transferase.

Yang W, Cahoon RE, Hunter SC, Zhang C, Han J, Borgschulte T, Cahoon EB.

Plant J. 2011 Jan;65(2):206-17. doi: 10.1111/j.1365-313X.2010.04417.x. Epub 2010 Dec 1.

18.

ACYL-LIPID DESATURASE2 is required for chilling and freezing tolerance in Arabidopsis.

Chen M, Thelen JJ.

Plant Cell. 2013 Apr;25(4):1430-44. doi: 10.1105/tpc.113.111179. Epub 2013 Apr 12.

19.

Overexpression of a FAD3 desaturase increases synthesis of a polymethylene-interrupted dienoic fatty acid in seeds of Arabidopsis thaliana L.

Puttick D, Dauk M, Lozinsky S, Smith MA.

Lipids. 2009 Aug;44(8):753-7. doi: 10.1007/s11745-009-3315-5. Epub 2009 Jun 23.

PMID:
19548018
20.

Plastid omega3-fatty acid desaturase-dependent accumulation of a systemic acquired resistance inducing activity in petiole exudates of Arabidopsis thaliana is independent of jasmonic acid.

Chaturvedi R, Krothapalli K, Makandar R, Nandi A, Sparks AA, Roth MR, Welti R, Shah J.

Plant J. 2008 Apr;54(1):106-17. Epub 2007 Dec 15.

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