Lambert Ilana, Pervent Marjorie, Le Queré Antoine, Clément Gilles, Tauzin Marc, Severac Dany, Benezech Claire, Tillard Pascal, Martin-Magniette Marie-Laure, Colella Stefano, Lepetit Marc
Laboratoire de Symbioses Tropicales et Méditerranéennes, INRAE, IRD, CIRAD, SupAgro, Univ. Montpellier, Montpellier, France.
Institut Jean-Pierre Bourgin, INRAE, AgroParisTech, CNRS, Université Paris-Saclay, Versailles, France.
J Exp Bot. 2020 Aug 6;71(16):5039-5052. doi: 10.1093/jxb/eraa221.
In symbiotic root nodules of legumes, terminally differentiated rhizobia fix atmospheric N2 producing an NH4+ influx that is assimilated by the plant. The plant, in return, provides photosynthates that fuel the symbiotic nitrogen acquisition. Mechanisms responsible for the adjustment of the symbiotic capacity to the plant N demand remain poorly understood. We have investigated the role of systemic signaling of whole-plant N demand on the mature N2-fixing nodules of the model symbiotic association Medicago truncatula/Sinorhizobium using split-root systems. The whole-plant N-satiety signaling rapidly triggers reductions of both N2 fixation and allocation of sugars to the nodule. These responses are associated with the induction of nodule senescence and the activation of plant defenses against microbes, as well as variations in sugars transport and nodule metabolism. The whole-plant N-deficit responses mirror these changes: a rapid increase of sucrose allocation in response to N-deficit is associated with a stimulation of nodule functioning and development resulting in nodule expansion in the long term. Physiological, transcriptomic, and metabolomic data together provide evidence for strong integration of symbiotic nodules into whole-plant nitrogen demand by systemic signaling and suggest roles for sugar allocation and hormones in the signaling mechanisms.
在豆科植物的共生根瘤中,终末分化的根瘤菌固定大气中的N2,产生NH4+内流,植物会吸收这些NH4+。作为回报,植物提供光合产物,为共生固氮提供能量。调节共生能力以满足植物氮需求的机制仍知之甚少。我们利用分根系统研究了全株氮需求的系统信号传导对模式共生组合蒺藜苜蓿/中华根瘤菌成熟固氮根瘤的作用。全株氮饱和信号迅速引发固氮作用的降低以及糖分向根瘤分配的减少。这些反应与根瘤衰老的诱导、植物对微生物防御的激活以及糖分运输和根瘤代谢的变化有关。全株氮缺乏反应反映了这些变化:响应氮缺乏,蔗糖分配迅速增加,这与根瘤功能和发育的刺激有关,长期来看会导致根瘤扩张。生理、转录组和代谢组数据共同为通过系统信号传导将共生根瘤与全株氮需求紧密整合提供了证据,并暗示了糖分分配和激素在信号传导机制中的作用。