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May 7, 2026LWT1 citationsOpen Access

Structural Optimization of Whey–Brown Rice Protein Bars with Elderberry and Diospyros lotus Extracts Using FTIR and Multivariate Analysis

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MKMaryam KaspourAPAmir PourfarzadSGSayed Amir Hossein Goli

Key Points

  • To optimize the formulation of protein bars through the integration of elderberry and Diospyros lotus extracts, examining their effects on various properties.
  • Examined physicochemical, microbiological, and antioxidant properties of protein bars.
  • Used response surface methodology (RSM) for formulation optimization.
  • Conducted FTIR analysis to assess structural changes in protein composition.
  • Evaluated sensory properties through consumer testing.
  • Achieved a 53.2% reduction in hardness of protein bars.
  • Increased DPPH activity by 57.8%, total phenolic content by 144.4%, and total flavonoid content by 345.2%.
  • FTIR analysis indicated shifts in protein structure enhancing flexibility.
  • Improved microbial stability associated with reduced water activity.

Abstract

Protein bars are widely consumed functional snacks, yet their quality often deteriorates during storage due to excessive hardness, limited moisture retention, and reduced sensory acceptability. This study examined the effects of elderberry extract and Diospyros lotus concentrate on the physicochemical, microbiological, structural, antioxidant, and sensory properties of whey–brown rice protein bars and optimized their formulation using response surface methodology (RSM). The optimized formulation showed a 53.2% reduction in hardness and substantial improvements in antioxidant capacity, including increases of 57.8% in DPPH activity, 144.4% in total phenolic content, 345.2% in total flavonoid content, and a marked rise in FRAP values. Microbial stability improved with increasing D. lotus concentration, associated with reduced water activity and phenolic-driven antimicrobial effects. FTIR analysis revealed that these formulations induced a shift in protein structure from rigid α-helices and intermolecular β-sheets toward more flexible β-turns and intramolecular β-sheets, enhancing matrix flexibility. Sensory evaluation confirmed improvements in flavor, texture, and overall acceptability. RSM identified 0.98 g/100g elderberry extract and 19.10 g/100g D. lotus concentrate as optimal. Partial least squares regression (PLSR) demonstrated strong correlations between FTIR-derived structural features and key quality attributes, supporting the applicability of spectroscopic–multivariate approaches for assessing protein-based snack products. ❖ FTIR revealed protein structural changes induced by added extracts ❖ PLSR predicted texture from FTIR-derived spectral features ❖ Polyphenols modified protein interactions and matrix structure ❖ FTIR–chemometric integration optimized protein bar formulation

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Cite This Study

Kaspour et al. (2026) studied this question.

synapsesocial.com/papers/69fbe3aa164b5133a91a2ff8https://doi.org/10.1016/j.lwt.2026.119438
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Also Consider

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