Sakaihara T, Honda A, Tateyama S, et al. Subcellular fractionation of polyprenyl diphosphate synthase activities responsible for the syntheses of polyprenols and dolichols in spinach leaves[J]. J Biachem, 2000, 128(6):1073-1078.
[5]
Tamogami S, Rakwal R, Kodama O. Phytoalexin production elicited by exogenously applied jasmonic acid in rice leaves(Oryza sativa L.)is under the control of cytokinins and ascorbic acid[J]. FEBS Lett, 1997, 412:61.
Qi FH, Zhan YG, Jing TZ. A review on elicitors and their regulation on secondary metabolites in plant cell culture[J]. Nat Prod Res Dev, 2008, 20:568-573.
Emanuelesson O, Nielsen H, von Heijne G. Chloro P, a neural network-based method for predicting chloroplast transit peptides and their cleavage sites[J]. Protein Science, 1999, 8(5):978-984.
[13]
Gasteiger E, Hoogland C, Gattiker A, et al. Protein identification and analysis tools on the ExPAsy Aerver. In:John M, Walker ed. The Proteomics Protocols Handbook[M]. New Jersey:Humana Press, 2005:571-607.
[14]
Guex N, Peitsch MC. SWISS-MODEL and the Swiss-PdbViewer:An environment for comparative protein modeling[J]. Electrophoresis, 1997, 18:2714-2723.
[15]
Stephan Z, Julia D, Rong W, et al. Whole-exome sequencing links a variantin DHDDS to retinitis pigmentosa[J]. The American Journal of Human Genetics, 2011, 88:201-206.
Mueller MJ, Brodschelm W, Spannagl E, et al. Signaling in the elicitation process is mediated through the octadecanoid pathway leading to jasmonic acid[J]. Proc Natl Acad Sci USA, 1993, 90:7490.
Núria C, Montserrat A, Oriol F, et al. Characterization of dehydrod-olichyl diphosphate synthase of Arabidopsis thaliana, a key enzyme in dolichol biosynthesis[J]. FEBS Letters, 2000(477):170-174.
[25]
Alexandrov NN, Brover VV, Freidin S, et al. Insights into corn genes derived from large-scale cDNA sequencing[J]. Plant Mol Biol, 2009, 69(1-2):179-194.
[26]
Hu MC, Gong HY, Lin GH, et al. XBP-1, a key regulator of unfolded protein response, activates transcription of IGF1 and Akt phosphorylation in zebrafish embryonic cell line[J]. Biochem Biophys Res Commun, 2007, 359(3):778-783.
[27]
Emanuelesson O, Nielsen H, Brunak S, et al. Predicting subcellular localization of proteins based on their N-terminaal amino acid sequence[J]. J Mol Biol, 2000, 300(4):1005-1016.
[28]
Bendsten JD, Nielsen H, Heijne GV, et al. Prediction of signal peptides:SignalP3. 0[J]. J Mol Biol, 2004, 340:783-795.
[29]
Higgins D, Thompson J, Gibson T, et al. CLUSTAL W:improving the sensitivity of progressive multiple sequence alignment through sequence weighting, position-specific gapenalties and weight matrix choice[J]. Nucleic Acides Res, 1999, 22:4673-4680.
[30]
Geourjon C, Deleage G. SOPMA:Significant improvement in protein secondary structure prediction by consensus prediction from multiple alinments[J]. Comput Appl Biosci, 1995, 11(6):681-684.
Schroeder JI, Allen GJ, Hugouvieux V, et al. Guard cell signal transduction[J]. Annual Review of Plant Biology, 2001, 52(1):627-658.
[33]
Yukimune Y, Tabata H, Higashi Y. Methyl jasmonate-induced overproduction of paclitaxel and baccatin III in taxus cell suspension cultures[J]. Nat Biotechnol, 1996, 14(9):1129-1132.
[34]
Choi D, Bostock RM, Avdiushko S, et al. Lipid-derived signals that discriminate wound and pathogen responsive isopernoid pathways in plants:Methyl jasmonate and the fungal elicitor arachidonic acid induce different 3-hydroxy-3-methylglutaryl-coenzyme A reductase genes and antimicrobial isoprenoids in Solanum tuberosum L. [J]. Proc Natl Acad Sci, 1994, 91(6):2329-2333.