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Nitrile-specifier Proteins Involved in Glucosinolate Hydrolysis in Arabidopsis thaliana

机译:涉及芥子油苷水解的腈分子蛋白 拟南芥 拟南芥

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摘要

Glucosinolates are plant secondary metabolites present in Brassicaceae plants such as the model plant Arabidopsis thaliana. Intact glucosinolates are believed to be biologically inactive, whereas degradation products after hydrolysis have multiple roles in growth regulation and defense. The degradation of glucosinolates is catalyzed by thioglucosidases called myrosinases and leads by default to the formation of isothiocyanates. The interaction of a protein called epithiospecifier protein (ESP) with myrosinase diverts the reaction toward the production of epithionitriles or nitriles depending on the glucosinolate structure. Here we report the identification of a new group of nitrile-specifier proteins (AtNSPs) in A. thaliana able to generate nitriles in conjunction with myrosinase and a more detailed characterization of one member (AtNSP2). Recombinant AtNSP2 expressed in Escherichia coli was used to test its impact on the outcome of glucosinolate hydrolysis using a gas chromatography-mass spectrometry approach. AtNSP proteins share 30–45% sequence homology with A. thaliana ESP. Although AtESP and AtNSP proteins can switch myrosinase-catalyzed degradation of 2-propenylglucosinolate from isothiocyanate to nitrile, only AtESP generates the corresponding epithionitrile. Using the aromatic benzylglucosinolate, recombinant AtNSP2 is also able to direct product formation to the nitrile. Analysis of glucosinolate hydrolysis profiles of transgenic A. thaliana plants overexpressing AtNSP2 confirms its nitrile-specifier activity in planta. In silico expression analysis reveals distinctive expression patterns of AtNSPs, which supports a biological role for these proteins. In conclusion, we show that AtNSPs belonging to a new family of A. thaliana proteins structurally related to AtESP divert product formation from myrosinase-catalyzed glucosinolate hydrolysis and, thereby, likely affect the biological consequences of glucosinolate degradation. We discuss similarities and properties of AtNSPs and related proteins and the biological implications.
机译:芥子油苷是存在于十字花科植物中的植物次生代谢产物,例如模型植物拟南芥。完整的芥子油苷被认为是生物惰性的,而水解后的降解产物在生长调节和防御中具有多种作用。芥子油苷的降解被称为芥子油苷的硫代葡糖苷酶催化,默认情况下导致异硫氰酸酯的形成。取决于硫代芥子油苷的结构,称为表硫基指定蛋白(ESP)的蛋白质与黑芥子酶的相互作用将反应转向表硫腈或腈的产生。在这里,我们报告鉴定了拟南芥中一组新的腈指定蛋白(AtNSPs),能够与黑芥子酶结合生成腈,并对一个成员(AtNSP2)进行了更详细的表征。大肠杆菌中表达的重组AtNSP2被用于使用气相色谱-质谱法测试其对芥子油苷水解结果的影响。 AtNSP蛋白与拟南芥ESP具有30–45%的序列同源性。尽管AtESP和AtNSP蛋白可以转换由芥子酸酯酶催化的2-丙烯基芥子油苷的降解 异硫氰酸盐转化为腈,只有AtESP生成相应的 表硫腈。使用芳香族苄基芥子油酸酯,重组AtNSP2为 也能够将产物形成引导至腈。分析 转基因拟南芥植物中芥子油苷的水解谱 过表达AtNSP2证实了其在腈中的活性 植物计算机表达分析揭示了与众不同 AtNSPs的表达模式,支持它们的生物学作用 蛋白质。总之,我们表明AtNSP属于一个新的 拟南芥蛋白与AtESP转移产物的结构相关 由黑芥子酶催化的芥子油苷水解而形成,从而 可能会影响芥子油苷降解的生物学后果。我们 讨论AtNSP和相关蛋白的相似性和特性,以及 生物学意义。

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