[1] Yoshimoto N, Yabe A, Sugino Y, et al. Garlic gamma-glutamyl transpeptidases that catalyze deglutamylation of biosynthetic intermediate of alliin[J]. Front Plant, 2015, 5:758-768. [2] Urano Y, Manabe T, Noji M, Saito K. Molecular cloning and functional characterization of cDNAs encoding cysteine synthase and serine acetyltransferase that may be responsible for high cellular cysteine content in Allium tuberosum[J]. Gene, 2000, 257(2):269-277. [3] Ravina CG, Chang CI, Tsakraklides GP, et al. The sac mutantsof chlamydomonas reinhardtii reveal transcriptional and posttranscrip-tional control of cysteine biosynthesis[J]. Plant Physiol, 2002, 130:2076-2084. [4] Ikegami F, Itagaki S, Murakoshi I. Purification and characterization of two forms of cysteine synthase from Allium tuberosum[J]. Phytochemistry, 1992, 32:31-34. [5] Ikegami F, Murakoshi I. Enzymic synthesis of non-protein β-substituted alanines and some higher homologues in plants[J]. Phytochemistry, 1994, 35(5):1089-1104. [6] Hatzfeld Y, Maruyama A, Schmidt A, et al. β-Cyanoalanine synthase is a mitochondrial cysteine synthase-like protein in spinach and Arabidopsis[J]. Plant Physiology, 2000, 123(3):1163-1172. [7] Takahashi H, Saito K. Subcellular localization of spinach cysteine synthase isoforms and regulation of their gene expression by nitrogen and sulfur[J]. Plant Physiology, 1996, 112(1):273-280. [8] CintiaGoulart K, Masaaki N, Michimi N, et al. Heavy metal tolerance of transgen ic tobacco plants over- expressing cysteine synthase[J]. Biotechnology Letters, 2004, 26:153-157. [9] Nakamura T, Yamaguchi Y, Sano H. Four rice genes encoding cysteine synthase:isolation and differential responses to sulfur, nitrogen and light[J]. Gene, 1999, 229(1-2):155-161. [10] Noji M, Saito M, Nakamura M, et al. Cysteine synthase overexpression in tobacco confers tolerance to sulfur-containing environmental pollutants[J]. Plant Physiology, 2001, 126(3):973-980. [11] Youssefian S, Nakamura M, Orudgev E, et al. Increased cysteine biosynthesis capacity of transgenic tobacco overexpressing an O-acetylserine(thiol)lyase modifies plant responses to oxidative stress[J]. Plant Physiology, 2001, 126(3):1001-1011. [12] Domínguez-Solís JR, Gutiérrez-Alcala G, Romero LC, et al. Cytosolic O-acetylserine(thiol)lyase gene is regulated by heavy metals and can function in cadmium tolerance[J]. Journal of Biological Chemistry, 2000, 276(12):9297-9302. [13] Nakamura M, Ochiai T, Noji M, et al. An improved tolerance to cadmium by overexpression of two genes for cysteine synthesis in tobacco[J]. Plant Biotechnology, 2014, 31(2):141-147. [14] Saito K, Kurosawa M, Murakoshi I. Determination of a functional lysine residue of a plant cysteine synthase by site-directed mutagenesis, and the molecular evolutionary implication[J]. FEBS Lett, 1993, 328:111-114. [15] Hell R, Bork C, Bogdanova N, et al. Isolation and characterization of two cDNAs encoding for compartment specific isoforms of O-acetylserine(thiol)lyase from Arabidopsis thaliana[J]. FEBS Lett, 1994, 351:257-262. [16] Marrero-Degro J, Marcano-Velázquez J, Siritunga D. Isolation and characterization of novel β-cyanoalanine synthase and cysteine synthase genes from cassava[J]. Plant Molecular Biology Reporter, 2011, 29(3):514-524. [17] 王小芳, 杨玲娟, 董晓宁, 等. 植物半胱氨酸合成及调控研究进展[J]. 植物生理学报, 2011, 47(1):37-48. [18] Ikegami F, Takayama K, Murakoshi I. Purification and properties of β-cyano-l-alanine synthase from Lathyrus latifolius[J]. Phytochemistry, 1988, 27:3385-3389. [19] Álvarez C, Calo L, Romero LC, et al. An Oacetylserine(thiol)lyase homolog with L-cysteine desulfhydrase activity regulates cysteine homeostasis in Arabidopsis thaliana[J]. Plant Physiol, 2010, 152:656-669. [20] Bermudez MA, Galmes J, Moreno I, et al. Photosynthetic adaptation to length of day is dependent on S-sulfocysteine synthase activity in the Thylakoid lumen[J]. Plant Physiol, 2012, 160(1):274-288. [21] Bonner ER, Cahoon RE, Knapke SM, et al. Molecular basis of cysteine biosynthesis in plants:Structural and functional analysis of O-acetylserine sulfhydrylase from Arabidopsis thaliana[J]. Journal of Biological Chemistry, 2005, 280(46):38803-38813. [22] 许奕, 金志强, 宋顺, 等. 香蕉MaCSase 基因的克隆和表达分析[J]. 中国农学通报, 2012, 28(34):202-210. [23] Álvarez C, Ángeles Bermúdez M, Romero LC, et al. Cysteine homeostasis plays an essential role in plant immunity[J]. New Phytologist, 2012, 193(1):165-177. |