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February 11, 2026Starch - Stärke0 citationsOpen Access

Complexation Process Between Amylose and Lysophospholipids Using Molecular Docking and Molecular Dynamics Simulation

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CTChuan TongYWYi WuRDRubing Deng

Key Points

  • The aim is to explore how lysophospholipids interact with amylose and affect its structure.
  • Used molecular docking and molecular dynamics simulation to analyze interactions.
  • Examined complexes formed between amylose and LPC16:0 & LPC18:2.
  • Measured RMSD, RG, SASA, and potential energy of complexes.
  • LPC16:0 displayed greater flexibility impact on amylose than LPC18:2.
  • The amylose-LPC16:0 complex had lower RMSD but higher RG and SASA.
  • Complexation led to increased potential energy compared to single amylose.

Abstract

ABSTRACT Lysophospholipids (LPLs), as a small proportion of lipids, always interact with amylose in starchy plants and significantly influence the structure of starch. This study investigated the complexing process between amylose and two LPLs (LPC16:0 and LPC18:2). Results showed that the LPLs molecules bound to the central hydrophobic cavity of amylose, and the amylose‐LPL complex (ALC) formed a typical V‐type structure. The amylose‐LPC18:2 complex showed a lower RMSD (21.2 Å) but higher RG (15.4 Å) and SASA (2922.7 Å 2 ) than the amylose‐LPC16:0 complex (25.4 Å of RMSD, 13.2 Å of RG and 2897.8 Å 2 of SASA), indicating a higher effectiveness of LPC16:0 in the flexibility of amylose residues. ALC had a higher potential energy (10.3–15.5 kcal/mol) than single amylose (8.0 kcal/mol). Furthermore, the total 4 C 1 conformation accounted for 97.5–98.8% of the conformation in ALC, which was lower than amylose (99.3%). The amylose‐LPC16:0 complex showed higher intermolecular bonds (399.3 vs. 243.6), O 2 –O 3 hydrogen bonds (746.9 vs. 679.5) and O 2 /O 3 –O 6 hydrogen bonds (256.0 vs. 199.0) than the amylose‐LPC18:2 complex. The intermolecular and intramolecular forces between amylose and LPLs molecules were primarily due to hydrophobicity and hydrogen bonds. These results provided an overview of the possible complexation process between native amylose and individual LPLs molecules in starchy plants.

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Cite This Study

Tong et al. (2026) studied this question.

synapsesocial.com/papers/698c1c33267fb587c655e67fhttps://doi.org/10.1002/star.70168
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