Design of metastable peanut protein-polyphenol complex particles for tunable flow, interfacial, and gelation
Shishuai Cui1, Shinuo Cao2, Tianlong Xiao3
1Institute of Food Science and Technology, Chinese Academy of Agricultural Sciences, Comprehensive Utilization Laboratory of Cereal and Oil Processing, Ministry of Agriculture and Rural Affairs, Beijing 100193, China; College of Food Science and Engineering, Qingdao Agricultural University, Qingdao 266109, China.
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This study investigated the complexation process between peanut protein (PP) and three structurally distinct trace polyphenols-gallic acid (GA), quercetin (QR), and epigallocatechin gallate (EGCG)-followed by spray drying. Spectroscopic analysis indicated that the polyphenols, acting as liquid-phase conformational modulators, guided the peptide chains into compact, α-helix-rich structures through specific noncovalent interactions (hydrophobic embedding for quercetin, and hydrogen bonding for gallic acid and epigallocatechin gallate). Rapid dehydration during the spray-drying process dynamically locks these transient conformations into process-induced metastable particles with unique surface topologies. Functionally, GA forms smooth, low-friction particles whose properties are optimized for rapid interfacial spreading. In contrast, QR and EGCG form rigid, porous aggregates characterized by high interparticle friction; this topological structure provides mechanical interlocking, which is essential for robust Pickering emulsion stabilization, enhanced water-holding capacity, and tunable particle gelation properties. Macroscopic functional tests confirm the existence of a structure-driven fundamental trade-off between rapid interfacial spreading ability and long-term mechanical barrier formation (emulsion stability and overall gelation). This study demonstrates that trace-level polyphenol modification, combined with process-induced kinetic locking, provides a targeted strategy for designing plant protein particle systems with customized flow, interfacial, and gelation behaviors.


