The Dionaea muscipula Ammonium Channel DmAMT1 Provides NH4+ Uptake Associated with Venus Flytrap’s Prey Digestion

Ammonium transporter (AMT/MEP/Rh) superfamily members mediate ammonium uptake and retrieval. This pivotal transport system is conserved among all living organisms. For plants, nitrogen represents a macronutrient available in the soil as ammonium, nitrate, and organic nitrogen compounds. Plants livin...

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Veröffentlicht in:Current biology 2013-09, Vol.23 (17), p.1649-1657
Hauptverfasser: Scherzer, Sönke, Krol, Elzbieta, Kreuzer, Ines, Kruse, Jörg, Karl, Franziska, von Rüden, Martin, Escalante-Perez, Maria, Müller, Thomas, Rennenberg, Heinz, Al-Rasheid, Khaled A.S., Neher, Erwin, Hedrich, Rainer
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Sprache:eng
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Zusammenfassung:Ammonium transporter (AMT/MEP/Rh) superfamily members mediate ammonium uptake and retrieval. This pivotal transport system is conserved among all living organisms. For plants, nitrogen represents a macronutrient available in the soil as ammonium, nitrate, and organic nitrogen compounds. Plants living on extremely nutrient-poor soils have developed a number of adaptation mechanisms, including a carnivorous lifestyle. This study addresses the molecular nature, function, and regulation of prey-derived ammonium uptake in the Venus flytrap, Dionaea muscipula, one of the fastest active carnivores. The Dionaea muscipula ammonium transporter DmAMT1 was localized in gland complexes where its expression was upregulated upon secretion. These clusters of cells decorating the inner trap surface are engaged in (1) secretion of an acidic digestive enzyme cocktail and (2) uptake of prey-derived nutrients. Voltage clamp of Xenopus oocytes expressing DmAMT1 and membrane potential recordings with DmAMT1-expressing Dionaea glands were used to monitor and compare electrophysiological properties of DmAMT1 in vitro and in planta. DmAMT1 exhibited the hallmark biophysical properties of a NH4+-selective channel. At depolarized membrane potentials (Vm = 0), the Km (3.2 ± 0.3 mM) indicated a low affinity of DmAMT1 for ammonium that increased systematically with negative going voltages. Upon hyperpolarization to, e.g., −200 mV, a Km of 0.14 ± 0.015 mM documents the voltage-dependent shift of DmAMT1 into a NH4+ transport system of high affinity. We suggest that regulation of glandular DmAMT1 and membrane potential readjustments of the endocrine cells provide for effective adaptation to varying, prey-derived ammonium sources. •Prey capture by Dionaea muscipula leads to expression of DmAMT1•This ammonium channel is localized in the gland cells of the Venus flytrap•DmAMT1 exhibited the hallmark biophysical properties of a NH4+-selective channel•By this, DmAMT1 is responsible for the import of prey-derived nitrogen compounds
ISSN:0960-9822
1879-0445
DOI:10.1016/j.cub.2013.07.028