Bioresources and Bioprocessing· 2026Q1
Optimization of pulsed electric field pretreatment followed by cellulase hydrolysis for enhanced protein recovery and antioxidant activity from brown seaweed (Undaria pinnatifida)
- 0citations
- Q1SCImago
- 2026year
Short summary
A sequential treatment of pulsed electric field (PEF) followed by cellulase hydrolysis increased protein recovery from brown seaweed (Undaria pinnatifida) by up to 375% compared to untreated controls.
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Key points
- Optimized PEF treatment (3 kV cm−1, 10 µs, 100 Hz, 60 s) followed by 1% cellulase hydrolysis increased protein concentration from Undaria pinnatifida to 1307 µg mL−1.
- The combined PEF and cellulase treatment yielded approximately 375% more protein than the untreated control.
- PEF pretreatment alone, under optimized conditions, achieved a protein concentration of 493 µg mL−1 with an energy efficiency of 684.72 mg protein kJ−1.
- The sequential PEF-cellulase method also resulted in the highest antioxidant activity, with 52.08% DPPH and 51.00% ABTS radical-scavenging activity.
AI-generated from the title and abstract; the full text is not read.
Abstract
Undaria pinnatifida is a promising brown seaweed due to its relatively high protein content and functional bioactive compounds. However, efficient recovery of these components is limited by its rigid, polysaccharide-rich cell wall structure. In this study, pulsed electric field (PEF) treatment followed by cellulase hydrolysis was investigated as a sequential approach to enhance protein extraction and antioxidant functionality from U. pinnatifida. PEF conditions were optimized by varying electric field strength, pulse width, pulse repetition frequency, treatment duration, seaweed loading, and pretreatment conditions to maximize protein release. The optimized conditions were 3 kV cm−1 electric field strength, 10 µs pulse width, 100 Hz pulse repetition frequency, and 60 s treatment duration, using 100 g of seaweed pretreated by mechanical cutting followed by 2 days of soaking in 3.5% saline solution. Under these conditions, protein concentration reached 493 ± 2.06 µg mL−1. The optimized PEF treatment required 0.18 kJ of electrical energy and achieved an energy efficiency of 684.72 ± 2.78 mg protein kJ−1. Subsequent cellulase hydrolysis further enhanced protein extraction, with the PEF + 1% cellulase treatment yielding 1307 ± 38.62 µg mL−1, compared with 870 ± 42.38 µg mL−1 for 1% cellulase alone, 512 ± 15.94 µg mL−1 for PEF alone, and 275 ± 10.46 µg mL−1 for the untreated control. Thus, the combined treatment produced approximately 50%, 155%, and 375% higher protein concentrations than 1% cellulase alone, PEF alone, and the untreated control, respectively. Antioxidant activity assessed separately using DPPH, ABTS, and FRAP assays also showed the highest responses for the combined treatment, with 52.08 ± 2.68% DPPH radical-scavenging activity, 51.00 ± 1.08% ABTS radical-scavenging activity, and 679 ± 1.08 µM Fe2+ equivalents in the FRAP assay. Overall, the optimized sequential PEF–cellulase treatment substantially improved protein extraction and produced the highest antioxidant responses among the treatments investigated, demonstrating its potential for enhancing the recovery of protein and antioxidant-active components from U. pinnatifida under laboratory-scale conditions. Optimal PEF conditions included 3 kV cm−1, 10 µs, 100 Hz, and 60 s. Cutting followed by 2-day soaking in 3.5% saline water yielded 493 ± 2.06 µg mL−1 protein after PEF. Optimized PEF required 0.18 kJ and achieved an energy efficiency of 684.72 ± 2.78 mg protein kJ−1. PEF followed by 1% cellulase increased protein concentration to 1307 ± 38.62 µg mL−1. PEF + cellulase achieved 52.08 ± 2.68% DPPH and 51.00 ± 1.08% ABTS radical-scavenging activity. PEF + cellulase produced the highest FRAP response at 679 ± 1.08 µM Fe2+ equivalents.
The authors' abstract, as published at the source. Bioresources and Bioprocessing, 2026 · DOI ↗
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