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1Cysteine and Cysteine-Related SignalingPathways in Arabidopsis thaliana显示文摘Cysteine occupies a central position in plant metabolism because it is a reduced sulfur donor moleculeinvolved in the synthesis of essential biomolecules and defense compounds. Moreover, cysteine per se and its deriva-tive molecules play roles in the redox signaling of processes occurring in various cellular compartments. Cysteine issynthesized during the sulfate assimilation pathway via the incorporation of sulfide to O-acetylserine, catalyzed byO-acetylserine(thiol)lyase (OASTL). Plant cells contain OASTLs in the mitochondria, chloroplasts, and cytosol, resultingin a complex array of isoforms and subcellular cysteine pools, in recent years, significant progress has been made inArabidopsis, in determining the specific roles of the OASTLs and the metabolites produced by them. Thus, the dis-covery of novel enzymatic activities of the less-abundant, like DES1 with L-cysteine desulfhydrase activity and SCSwith S-sulfocysteine synthase activity, has provided new perspectives on their roles, besides their metabolic functions.Thereby, the research has been demonstrated that cytosolic sulfide and chloroplastic S-sulfocysteine act as signalingmolecules regulating autophagy and protecting the photosystems, respectively. In the cytosol, cysteine plays an essentialrole in plant immunity; in the mitochondria, this molecule plays a central role in the detoxification of cyanide, which isessential for root hair development and plant responses to pathogens.2014Molecular Plant2014,7,2:1
2氰丙氨酸合酶在乙烯诱导杨树耐盐中的作用显示文摘【目的】探讨木本植物线粒体β-氰丙氨酸合成酶在乙烯诱导的交替呼吸氧化酶(AOX)途径对盐胁迫响应中的作用。【方法】选取盐胁迫下‘南林895’杨叶片,利用HPLC测定氨基环丙烷羧酸(ACC,乙烯前体)含量,实时荧光定量PCR分析基因表达,比色法测定半胱氨酸水平。【结果】盐胁迫使杨树幼苗叶片ACC积累,乙烯合成相关酶(ACS7和ACO3)、氰丙氨酸合酶(CYS C1),以及腈水解酶(NIT4)等基因显著上调表达,同时伴随着线粒体交替呼吸氧化酶(AOX1b)基因的上调和细胞色素c氧化酶(COX6b)基因下调表达。水杨基氧肟酸(SHAM)预处理导致AOX1b基因表达被抑制,电解质渗透率(EL)和丙二醛(MDA)含量上升,但不影响CYS C1表达。而乙烯合成抑制剂氨基氧乙酸(AOA)了抑制CYS C1和盐胁迫诱导的AOX1b基因的表达,并增加EL和MDA含量。此外,AOA恢复盐胁迫减少的半胱氨酸含量,而SHAM和抗霉素A(AA)均无此效应。【结论】杨树叶片CYS C1参与了乙烯激发的耐盐响应,但乙烯诱导的交替呼吸氧化酶(AOX)并未位于CYS C1上游而发挥作用。廖杨文科 崔荣荣 谢寅峰 2019南京林业大学学报(自然科学版)2019,43,6:0
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