Evaluation of ADP Glucose Pyrophosphorylase Subunit Interaction in Wheat by Binding Free Energy Calculations.
Journal:
Molecular biotechnology
Published Date:
Dec 27, 2025
Abstract
ADP-glucose pyrophosphorylase (AGPase; E.C. 2.7.7.27) is the rate-limiting enzyme catalyzing the first committed step of starch biosynthesis in higher plants. The enzyme functions as a heterotetramer comprising two large (LS) and two small (SS) subunits that share 47.02% sequence identity in wheat. To elucidate the structural mechanism underlying heterotetramer assembly, we generated six possible dimeric conformations based on two-fold symmetry, three side-by-side (D1, D2, D3), and three upside-down (D4, D5, D6) orientations and evaluated their stability through all-atom molecular dynamics (MD) simulations combined with MM-GBSA and MM-PBSA free energy analyses. Among all configurations, the D2 heterodimer emerged as the most stable, exhibiting the lowest binding free energy (-15.2 kcal·mol⁻1), largest interface area (1757.2 Å2), and strongest predicted affinity (Kd = 2.1 × 10⁻11 M). Interaction energy analysis revealed that D2 stability is primarily governed by an extensive network of 25 hydrogen bonds and seven salt bridges at the LS-SS interface. Together, these results provide the first comprehensive molecular insight into the assembly and stabilization of wheat AGPase, a central determinant of starch biosynthetic efficiency. These results provide the first deep-learning-based molecular model of wheat AGPase, offering detailed structural insight into its subunit assembly and stability mechanisms. By identifying key interfacial residues that govern complex formation, this study establishes a foundation for rational protein engineering aimed at enhancing AGPase thermostability and catalytic efficiency, traits directly linked to improved starch accumulation and grain yield in cereal crops.
Authors
Keywords
No keywords available for this article.