Ludewig Uwe, von Wirén Nico, Frommer Wolf B
Zentrum für Molekularbiologie der Pflanzen, Pflanzenphysiologie, Universität Tübingen, Auf der Morgenstelle 1, Tübingen, Germany.
J Biol Chem. 2002 Apr 19;277(16):13548-55. doi: 10.1074/jbc.M200739200. Epub 2002 Jan 30.
The transport of ammonium/ammonia is a key process for the acquisition and metabolism of nitrogen. Ammonium transport is mediated by the AMT/MEP/Rh family of membrane proteins which are found in microorganisms, plants, and animals, including the Rhesus blood group antigens in humans. Although ammonium transporters from all kingdoms have been functionally expressed and partially characterized, the transport mechanism, as well as the identity of the true substrate (NH(4+) or NH(3)) remains unclear. Here we describe the functional expression and characterization of LeAMT1;1, a root hair ammonium transporter from tomato (Lycopersicon esculentum) in Xenopus oocytes. Micromolar concentrations of external ammonium were found to induce concentration- and voltage-dependent inward currents in oocytes injected with LeAMT1;1 cRNA, but not in water-injected control oocytes. The NH(4+)-induced currents were more than 3-fold larger than methylammonium currents and were not subject to inhibition by Na(+) or K(+). The voltage dependence of the affinity of LeAMT1;1 toward its substrate strongly suggests that charged NH(4+), rather than NH(3), is the true transport substrate. Furthermore, ammonium transport was independent of the external proton concentration between pH 5.5 and pH 8.5. LeAMT1;1 is concluded to mediate potential-driven NH(4+) uptake and retrieval depending on root membrane potential and NH(4+) concentration gradient.
铵/氨的转运是氮获取和代谢的关键过程。铵的转运由膜蛋白AMT/MEP/Rh家族介导,这些蛋白存在于微生物、植物和动物中,包括人类的恒河猴血型抗原。尽管来自所有生物界的铵转运体都已进行了功能表达和部分特性鉴定,但转运机制以及真正底物(NH₄⁺ 或 NH₃)的身份仍不清楚。在此,我们描述了番茄(Lycopersicon esculentum)根毛铵转运体LeAMT1;1在非洲爪蟾卵母细胞中的功能表达和特性。发现微摩尔浓度的外部铵会在注射LeAMT1;1 cRNA的卵母细胞中诱导浓度和电压依赖性内向电流,但在注射水的对照卵母细胞中则不会。NH₄⁺ 诱导的电流比甲基铵电流大3倍以上,且不受Na⁺ 或K⁺ 的抑制。LeAMT1;1对其底物亲和力的电压依赖性强烈表明,带电荷的NH₄⁺ 而非NH₃ 是真正的转运底物。此外,在pH 5.5至pH 8.5之间,铵的转运与外部质子浓度无关。得出结论,LeAMT1;1介导依赖于根膜电位和NH₄⁺ 浓度梯度的电位驱动的NH₄⁺ 摄取和回收。