Le Roux M R, Khan S, Valentine A J
Plant Physiology Group, South African Herbal Science and Medicine Institute, University of the Western Cape, Private Bag X17, Belleville 7535, South Africa.
Department of Health Sciences, Faculty of Health and Wellness Science, Cape Peninsula University of Technology, PO Box 652, Cape Town 8000, South Africa.
New Phytol. 2008;177(4):956-964. doi: 10.1111/j.1469-8137.2007.02305.x. Epub 2007 Dec 7.
Nodulated lupins (Lupinus angustifolius cv. Wonga) were hydroponically grown under conditions of low phosphate (LP) or adequate phosphate (HP) to assess the effect of phosphoenolpyruvate carboxylase (PEPC)-derived organic acids on nitrogen assimilation in LP nodules. LP conditions are linked to altered organic acid metabolism, by the engagement of PEP metabolism via PEPC. In LP nodules, the enhanced organic acid synthesis may reduce the available organic carbon for nitrogen assimilation. The diversion of carbon between the organic acid- and amino acid pools was assessed through key nodular enzymes and (14)CO(2) metabolism. Under LP conditions, increased rates of organic acid synthesis via PEPC and malate dehydrogenase (MDH), coincided with reduced nitrogen assimilation via aspartate aminotransferase (AAT), aspartate synthetase (AS) and glutamine synthetase (GS)/glutamate synthase (GOGAT) activities. There was a preferential metabolism of nodular (14)CO(2) into organic acids and particularly into malate. High malate levels were associated with reduced N(2) fixation and synthesis of amino acids. These results indicate that phosphorus deficiency can enhance malate synthesis in nodules, but that excessive malate accumulation may inhibit N(2) fixation and nitrogen assimilation.
将结瘤羽扇豆(羽扇豆品种Wonga)在低磷(LP)或充足磷(HP)条件下进行水培,以评估磷酸烯醇式丙酮酸羧化酶(PEPC)衍生的有机酸对LP根瘤中氮同化的影响。LP条件通过PEPC参与PEP代谢与有机酸代谢改变有关。在LP根瘤中,增强的有机酸合成可能会减少可用于氮同化的有机碳。通过关键的根瘤酶和(14)CO(2)代谢评估了有机酸池和氨基酸池之间的碳分配。在LP条件下,通过PEPC和苹果酸脱氢酶(MDH)增加的有机酸合成速率与通过天冬氨酸转氨酶(AAT)、天冬氨酸合成酶(AS)和谷氨酰胺合成酶(GS)/谷氨酸合酶(GOGAT)活性降低的氮同化同时发生。根瘤(14)CO(2)优先代谢为有机酸,尤其是苹果酸。高苹果酸水平与固氮和氨基酸合成减少有关。这些结果表明,磷缺乏可增强根瘤中苹果酸的合成,但过量的苹果酸积累可能会抑制固氮和氮同化。