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April 24, 2026Molecular Biology and Evolution1 citationsOpen Access

A milestone in C4 carbon concentration mechanism evolution: structural remodeling of NADP-malic enzyme in Poaceae

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JBJ. BöhmSWSimone WillmsOFOja Ferrao

Key Points

  • This research aims to understand the structural changes in NADP-malic enzyme that enable C4 photosynthesis.
  • Utilized X-ray crystallography to study enzyme structure.
  • Applied cryo-electron microscopy for detailed imaging.
  • Conducted molecular modeling and biochemical analysis to examine oligomeric states.
  • Identified distinct oligomeric forms: a tetrameric C4-specific isoform and a dimeric housekeeping isoform.
  • Demonstrated that specific adaptive substitutions at the dimer interface facilitate tetramer formation.
  • Showed that terminal regions stabilize the different oligomeric states through unique interactions.

Abstract

The evolution of C4 photosynthesis required extensive modification of ancestral enzymes enabling the development of an efficient carbon concentrating mechanism. A key example is NADP-malic enzyme (NADP-ME), which, in maize and sorghum-members of the same C4 lineage-underwent gene duplication and neofunctionalization, resulting in 2 plastidic isoforms with distinct oligomeric states: a tetrameric C4-specific isoform and a dimeric housekeeping (nonC4) isoform. In this study, we resolve the structural basis of this oligomeric divergence using X-ray crystallography, cryo-electron microscopy, and molecular modeling combined with targeted biochemical analysis. Our findings demonstrate that the N-terminal region of nonC4-NADP-ME is involved in its oligomeric organization, whereas a suite of adaptive substitutions at the dimer interface drives the transition to the stable tetramer characteristic of the C4 isoform. Moreover, the C-terminal region stabilizes the oligomeric states of C4- and nonC4-NADP-ME through specific interactions with adaptive residues. We propose that tetramerization mitigates aggregation at the high expression levels demanded by the C4 cycle and likely creates a scaffold for the emergence of regulatory properties. Collectively, the data show that remodeling of terminal domains and inter-subunit interfaces rewires the quaternary architecture of the enzymes, illustrating how subtle structural changes can drive the evolution of complex innovations such as C4 photosynthesis.

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Cite This Study

Böhm et al. (2026) studied this question.

synapsesocial.com/papers/69eb0aeb553a5433e34b4d21https://doi.org/10.1093/molbev/msag056
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