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March 8, 2026Foods2 citationsOpen Access

Structural Reconstruction and Enhanced Digestive Resistance in High-Amylose Maize Starch–Fatty Acid Complexes via Debranching and Heat–Moisture Treatment

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QMQianhan MaZZZiyan ZangSYShuling Yan

Key Points

  • The study aims to develop thermally stable resistant starch (RS5) from high-amylose maize starch using enzymatic and thermal processes.
  • Sequential treatment of high-amylose maize starch using pullulanase and heat-moisture treatment.
  • Complexation of starch with myristic and linoleic acids for structural enhancement.
  • Analysis of the effects of varying debranching duration on resistant starch properties.
  • Extended debranching for 24 hours significantly increased resistant starch content to 69.2% in complexed samples.
  • Myristic acid provided higher crystallinity, while linoleic acid enhanced enzymatic resistance due to steric hindrance.
  • Pressure-heat treatment generally improved resistant starch parameters over annealing.

Abstract

The development of thermally stable Type 5 resistant starch (RS5) is critical for functional food applications to modulate glycemic responses. This study investigated the structural assembly and enzymatic resistance of RS5 complexes prepared from high-amylose maize starch (HAMS) via a sequential strategy coupling pullulanase debranching with heat–moisture treatment (HMT). HAMS was debranched for varying durations (0–24 h) to generate short, linear glucan chains, subsequently complexed with myristic acid (MA) or linoleic acid (LOA), and further modified by pressure–heat treatment (PHT) or annealing (ANN). Extended debranching (24 h) significantly enhanced the complexing index and resistant starch (RS) content. While saturated MA promoted higher crystallinity of the hexagonal Bravais lattice, unsaturated LOA effectively enhanced resistance through steric hindrance despite lower crystallinity. Notably, PHT generally outperformed ANN, with the highest RS content (69.2%) achieved in DH24-LOA complexes treated at 120 °C with 10% moisture. Multi-scale structural analyses revealed that resistance originated from the transition of amorphous chains into highly ordered, thermally stable nanocrystals possessing a hexagonal Bravais lattice and the densification of the macroscopic architecture. These findings demonstrate that coupling pullulanase debranching with optimized PHT is a potent strategy to engineer high-performance RS5 ingredients with superior digestive resistance.

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Cite This Study

Ma et al. (2026) studied this question.

synapsesocial.com/papers/69acc57d32b0ef16a404fa4bhttps://doi.org/10.3390/foods15050907
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