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Integrative crystallography and molecular dynamics reveal isoform-specific ligand interaction networks in C4 and nonC4 plant NADP-malic enzyme.

Jul 2026 · The Plant Journal · Vol 127 3, pp. e71064 · 1 citation · 17 references
Medicine

TL;DR

These structures and simulations provide a network-level framework for plastidic NADP-ME functional diversification and generate testable hypotheses for how ligand coordination drives isoform-specific catalysis.

Abstract

NADP-dependent malic enzyme (NADP-ME) has been repeatedly co-opted into distinct metabolic roles across plants, most prominently as the decarboxylase of NADP-ME-type C4 photosynthesis. In maize, the plastidic C4- and nonC4-NADP-ME isoforms are closely related in sequence yet display strikingly different catalytic properties, suggesting that small changes in ligand recognition can re-tune reaction chemistry. However, mechanistic interpretation has been hampered by the scarcity of plant NADP-ME structures captured in catalytically informative, ligand-bound states. Here, we integrate X-ray crystallography with structure-guided docking and atomistic molecular dynamics (MD) to resolve ligand-site interaction networks across reaction states. We determined a 2.55 Å structure of maize plastidic nonC4-NADP-ME bound to NADP+, pyruvate, and Mg2+, revealing a conserved NADP-ME fold with localized active-site flexibility. Comparison with maize C4-NADP-ME uncovers isoform-specific rewiring of NADP+ and pyruvate contacts, with the nonC4 enzyme forming a denser product-cofactor interaction network. To access substrate-bound states, we reconstructed malate-NADP+-Mg2+ complexes by docking followed by MD, identifying distinct malate-Mg2+ coordination geometries and alternative NADP+ positioning between isoforms. Together, these structures and simulations provide a network-level framework for plastidic NADP-ME functional diversification and generate testable hypotheses for how ligand coordination drives isoform-specific catalysis.

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