期刊文献+

Non-redundant Contribution of the Plastidial FAD8 ω-3 Desatumse to Glycerolipid Unsatumtion at Different Temperatures in Arabidopsis 被引量:3

Non-redundant Contribution of the Plastidial FAD8 ω-3 Desatumse to Glycerolipid Unsatumtion at Different Temperatures in Arabidopsis
原文传递
导出
摘要 Plastidial ω-3 desaturase FAD7 is a major contributor to trienoic fatty acid biosynthesis in the leaves of Arabidopsis plants. However, the precise contribution of the other plastidial ω-3 desaturase, FAD8, is poorly understood. Fatty acid and lipid analysis of several ω-3 desaturase mutants, including two insertion lines of AtFAD7 and AtFAD8, showed that FAD8 partially compensated the disruption of the AtFAD7 gene at 22℃, indicating that FAD8 was active at this growth temperature, contrasting to previous observations that circumscribed the FAD8 activity at low temperatures. Our data revealed that FAD8 had a higher selectivity for 18:2 acyl-lipid substrates and a higher preference for lipids other than galactolipids, particularly phosphatidylglycerol, at any of the temperatures studied. Differences in the mechanism controlling AtFAD7 and AtFAD8 gene expression at different temperatures were also detected. Confocal microscopy and biochemical analysis of FAD8-YFP over-expressing lines confirmed the chloroplast envelope localization of FAD8. Co-localization experiments suggested that FAD8 and FAD7 might be located in close vicinity in the envelope membrane. FAD8-YFP over-expressing lines showed a specific increase in 18:3 fatty acids at 22℃. Together, these results indicate that the function of both plastidial ω-3 desaturases is coordinated in a non-redundant manner. Plastidial ω-3 desaturase FAD7 is a major contributor to trienoic fatty acid biosynthesis in the leaves of Arabidopsis plants. However, the precise contribution of the other plastidial ω-3 desaturase, FAD8, is poorly understood. Fatty acid and lipid analysis of several ω-3 desaturase mutants, including two insertion lines of AtFAD7 and AtFAD8, showed that FAD8 partially compensated the disruption of the AtFAD7 gene at 22℃, indicating that FAD8 was active at this growth temperature, contrasting to previous observations that circumscribed the FAD8 activity at low temperatures. Our data revealed that FAD8 had a higher selectivity for 18:2 acyl-lipid substrates and a higher preference for lipids other than galactolipids, particularly phosphatidylglycerol, at any of the temperatures studied. Differences in the mechanism controlling AtFAD7 and AtFAD8 gene expression at different temperatures were also detected. Confocal microscopy and biochemical analysis of FAD8-YFP over-expressing lines confirmed the chloroplast envelope localization of FAD8. Co-localization experiments suggested that FAD8 and FAD7 might be located in close vicinity in the envelope membrane. FAD8-YFP over-expressing lines showed a specific increase in 18:3 fatty acids at 22℃. Together, these results indicate that the function of both plastidial ω-3 desaturases is coordinated in a non-redundant manner.
出处 《Molecular Plant》 SCIE CAS CSCD 2015年第11期1599-1611,共13页 分子植物(英文版)
关键词 Arabidopsis thaliana GLYCEROLIPID fatty acid FAD7 FAD8 PLASTID Arabidopsis thaliana, glycerolipid, fatty acid, FAD7, FAD8, plastid
  • 相关文献

参考文献52

  • 1Andreu, V., Collados, R., Testillano, P.S., Risueo, M.C., Picorel, R., and Alfonso, M. (2007), In situ molecular identification of the plastid -3 fatty-acid desaturase FAD7 from soybean: evidence of thylakoid membrane Loca(ization. Plant PhysioL. 145:1336-1344.
  • 2Andreu, V., Lagunas, B., Collados, R., Picorel, R., and Alfonso, M. (2010). The GmFAD7 gene family from soybean: identification of novel genes and tissue-specific conformations of the FAD7 enzyme involved in desaturase activity. J. Exp. Bot. 61:3371-3384.
  • 3Bals, T., and Schinemann, D. (2011). Isolation of Arabidopsis thylakoid membranes and their use for in vitro protein insertion or transport assays. Methods Mol. Biol. 774:321-338.
  • 4Behrouzian, B., and Buist, P.H. (2002). Fatty acid desaturation: variations on an oxidative theme, Curt, Opin, Chem, Biol, 6:577-582.
  • 5Berberich, T., Harada, M., Sugawara, K., Kodama, H., Iba, K., and Kusano, T. (1998). Two maize genes encoding -3 fatty-aciddesaturase and their differential expression to temperature. Plant Mol. Biol. 36:297-306.
  • 6Bilyeu, K.D., Palavalli, L., Sleper, D.A., and Beuselinck, P.R. (2003). Three microsomal desaturase genes contribute to soybean linolenic acid levels. Crop Sci, 43:1833-1838,.
  • 7Bligh, E.G., and Dyer, W.S. (1959). A rapid method of total lipid extraction and purification. Can. J. Biochem. Physiol. 37:911-917.
  • 8Breuers, F.K.H., Brutigam, A., Geimer, S., Welzel, U.Y., Stefano, G., Renna, L., Brandizzi, F., and Weber, A.P.M. (2012). Dynamic remodelling of the plastid envelope membranes - a tool for chloroplast envelope in vivo Iocal izations. Front. Plant Sci. 3:1-10.
  • 9Browse, J., and Somerville, C. (1991). Glycerolipid synthesis: biochemistry and regulation. Annu. Rev. Plant Physiol. 42:467-506.
  • 10Browse, J., McCourt, P., and Somerville, C. (1986). A mutant of Arabidopsis deficient in C(18:3) and C(16:3) leaf lipids. Plant Physiol. 81:859-864.

同被引文献5

引证文献3

二级引证文献3

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部