Fliniaux Ophélie, Mesnard François, Raynaud-Le Grandic Sophie, Baltora-Rosset Sylvie, Bienaimé Christophe, Robins Richard J, Fliniaux Marc-André
Laboratoire de Phytotechnologie, EA 2085, Faculté de Pharmacie, 1, rue des Louvels, F-80037 Amiens cedex 1, France.
J Exp Bot. 2004 May;55(399):1053-60. doi: 10.1093/jxb/erh119. Epub 2004 Apr 8.
De-differentiation of transformed root cultures of Datura stramonium has previously been shown to cause a loss of tropane alkaloid synthetic capacity. This indicates a marked shift in physiological status, notably in the flux of primary metabolites into tropane alkaloids. Nitrogen metabolism in transformed root cultures of D. stramonium (an alkaloid-producing system) and de-differentiated suspension cultures derived therefrom (a non-producing system) has been compared using Nuclear Magnetic Resonance (NMR) spectroscopy. (15)N-Labelled precursors [((15)NH(4))(2)SO(4) and K(15)NO(3)] were fed and their incorporation into nitrogenous metabolites studied using Heteronuclear Multiple Bond Coherence (HMBC) NMR spectroscopy. In both cultures, the same amino acids were resolved in the HMBC spectra. However, marked differences were found in the intensity of labelling of a range of nitrogenous compounds. In differentiated root cultures, cross-peaks corresponding to secondary metabolites, such as tropine, were observed, whereas these were absent in the de-differentiated cultures. By contrast, N- acetylputrescine and gamma-aminobutyric acid (GABA) accumulated in the de-differentiated cultures to a much larger extent than in the root cultures. It can therefore be suggested that the loss of alkaloid biosynthesis was compensated by the diversion of putrescine metabolism away from the tropane pathway and toward the synthesis of GABA via N-acetylputrescine.
之前已表明,曼陀罗转化根培养物的去分化会导致托烷生物碱合成能力丧失。这表明生理状态发生了显著变化,尤其是在初级代谢产物向托烷生物碱的通量方面。使用核磁共振(NMR)光谱法比较了曼陀罗转化根培养物(一种生物碱产生系统)和由此衍生的去分化悬浮培养物(一种非产生系统)中的氮代谢。加入了(15)N标记的前体[((15)NH4)2SO4和K15NO3],并使用异核多键相干(HMBC)NMR光谱法研究它们掺入含氮代谢产物的情况。在两种培养物中,HMBC光谱中分辨出了相同的氨基酸。然而,在一系列含氮化合物的标记强度上发现了显著差异。在分化的根培养物中,观察到了与托品等次生代谢产物相对应的交叉峰,而在去分化培养物中则没有这些交叉峰。相比之下,N-乙酰腐胺和γ-氨基丁酸(GABA)在去分化培养物中的积累程度比在根培养物中要大得多。因此可以认为,生物碱生物合成的丧失通过腐胺代谢从托烷途径转向经由N-乙酰腐胺合成GABA而得到补偿。