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First published online January 25, 2008; 10.1104/pp.107.114975

Plant Physiology 146:1540-1552 (2008)
© 2008 American Society of Plant Biologists

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BIOCHEMICAL PROCESSES AND MACROMOLECULAR STRUCTURES

Arabidopsis NAD-Malic Enzyme Functions As a Homodimer and Heterodimer and Has a Major Impact on Nocturnal Metabolism1,[W]

Marcos A. Tronconi, Holger Fahnenstich, Mariel C. Gerrard Weehler, Carlos S. Andreo, Ulf-Ingo Flügge, María F. Drincovich and Verónica G. Maurino*

Centro de Estudios Fotosintéticos y Bioquímicos, Universidad Nacional de Rosario, 2000 Rosario, Argentina (M.A.T., M.C.G.W., C.S.A., M.F.D.); and Botanisches Institut, Universität zu Köln, 50931 Cologne, Germany (H.F., U.-I.F., V.G.M.)

Although the nonphotosynthetic NAD-malic enzyme (NAD-ME) was assumed to play a central role in the metabolite flux through the tricarboxylic acid cycle, the knowledge on this enzyme is still limited. Here, we report on the identification and characterization of two genes encoding mitochondrial NAD-MEs from Arabidopsis (Arabidopsis thaliana), AtNAD-ME1 and AtNAD-ME2. The encoded proteins can be grouped into the two clades found in the plant NAD-ME phylogenetic tree. AtNAD-ME1 belongs to the clade that includes known {alpha}-subunits with molecular masses of approximately 65 kD, while AtNAD-ME2 clusters with the known β-subunits with molecular masses of approximately 58 kD. The separated recombinant proteins showed NAD-ME activity, presented comparable kinetic properties, and are dimers in their active conformation. Native electrophoresis coupled to denaturing electrophoresis revealed that in vivo AtNAD-ME forms a dimer of nonidentical subunits in Arabidopsis. Further support for this conclusion was obtained by reconstitution of the active heterodimer in vitro. The characterization of loss-of-function mutants for both AtNAD-MEs indicated that both proteins also exhibit enzymatic activity in vivo. Neither the single nor the double mutants showed a growth or developmental phenotype, suggesting that NAD-ME activity is not essential for normal autotrophic development. Nevertheless, metabolic profiling of plants completely lacking NAD-ME activity revealed differential patterns of modifications in light and dark periods and indicates a major role for NAD-MEs during nocturnal metabolism.


1 This work was supported by the Deutsche Forschungsgemeinschaft (to V.G.M.), and by CONICET and Agencia Nacional de Promoción de Actividades Científicas y Tecnológicas (to M.F.D. and C.S.A.).

The author responsible for distribution of materials integral to the findings presented in this article in accordance with the policy described in the Instructions for Authors (www.plantphysiol.org) is: Verónica G. Maurino (v.maurino{at}uni-koeln.de).

[W] The online version of this article contains Web-only data.

www.plantphysiol.org/cgi/doi/10.1104/pp.107.114975

* Corresponding author; e-mail v.maurino{at}uni-koeln.de.

Received December 13, 2007; accepted January 23, 2008; published January 25, 2008.




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