In-Depth Characterization of Black Soldier Fly Larvae Reared on Phenolic-Rich Agro-Industrial Substrates
Simple Summary
Abstract
1. Introduction
2. Materials and Methods
2.1. Purchasing By-Products Rich in Phenols and Flavonoids (Red Beetroot Peel, Red Potato Peel, and Red Apple Peel)
BSFL Rearing and Experimental Design
2.2. Proximate Composition
2.3. Colorimetric Assay
2.4. Rheologic Assay
2.5. Ultrasound-Assisted Extraction
2.6. Total Flavonoids Content (TFC)
2.7. Total Phenolic Content
2.8. Antioxidant Capacity Assays
2.8.1. Cupric Ion Reducing Antioxidant Capacity (CUPRAC)
2.8.2. DPPH Assay
2.8.3. ABTS Assay
2.9. Mycotoxin Analysis
2.10. Statistical Analysis
3. Results
3.1. Characterization of Organic Substrates and Slaughtering Times
3.2. Proximal Composition
3.3. Colorimetric Assay
3.4. Rheological Assessment
3.5. Mycotoxin Analysis
3.6. Total Flavonoid Content (TFC)
3.7. Total Phenol Content (TPC)
3.8. Antioxidant Capacity Assays
3.8.1. CUPRAC (Cupric Ion Reducing Antioxidant Capacity)
3.8.2. DPPH (1,1-Diphenyl-2-picrylhydrazyl)
3.8.3. ABTS Stands for 2,2′-Azino-bis(3-ethylbenzothiazoline-6-sulfonic Acid)
4. Discussion
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
| ABP | Apple-containing by-products |
| BBP | Beetroot-containing by-products |
| PBP | Potato-containing by-products |
| BSFL | Black Soldier Fly larvae |
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| Experimental Groups | 2% | 10% | 20% |
|---|---|---|---|
| Apple peel—by-products | ABP2% | ABP10% | ABP20% |
| Beetroot peel—by-products | BBP2% | BBP10% | BBP20% |
| Potato peel—by-products | PBP2% | PBP10% | PBP20% |
| Experimental Groups | ABP2% | ABP10% | ABP20% | BBP2% | BBP10% | BBP20% | PBP2% | PBP10% | PBP20% | Control |
|---|---|---|---|---|---|---|---|---|---|---|
| Slaughtering Time (Days After Start) | 32 | 32 | (24–32) | 20 | (22–32) | 23 | 32 | 32 | (20–32) | 23 |
| Exp. Groups | Ash | Protein | Moisture | Fat | Nitrogen Free Extract |
|---|---|---|---|---|---|
| ABP2% | 17.88 ± 2.16 ns | 36.57 ± 7.62 ns | 8.45 ± 0.03 ns | 14.47 ± 1.90 ns | 22.60 ± 7.33 * |
| ABP10% | 18.14 ± 3.47 ns | 36.8 ± 2.95 ns | 13.45 ± 3.22 ns | 18.04 ± 9.17 ns | 13.56 ± 11.87 ns |
| ABP20% | 12.51 ± 2.29 ns | 40.05 ± 1.37 ns | 16.21 ± 0.33 ns | 15.87 ± 6.88 ns | 15.34 ± 5.61 ns |
| BBP2% | 18.30 ± 8.87 ns | 34.84 ± 5.40 ns | 18.92 ± 7.48 * | 9.57 ± 2.53 * | 18.35 ± 6.54 ns |
| BBP10% | 13.79 ± 1.46 ns | 35.48 ± 4.26 ns | 9.02 ± 6.01 ns | 11.34 ± 6.13 ns | 30.34 ± 14.94 *** |
| BBP20% | 13.66 ± 0.65 ns | 40.09 ± 3.94 ns | 6.66 ± 2.02 ns | 14.91 ± 0.17 ns | 24.64 ± 1.08 * |
| PBP2% | 24.94 ± 4.78 *** | 33.86 ± 2.94 ns | 9.06 ± 0.44 ns | 18.2 ± 4.44 ns | 13.91 ± 2.156 ns |
| PBP10% | 17.57 ± 6.31 ns | 37.63 ± 4.90 ns | 12.98 ± 3.50 ns | 11.39 ± 0.24 ns | 20.41 ± 2.333 ns |
| PBP20% | 21.22 ± 7.29 * | 30.89 ± 6.03 ns | 14.04 ± 9.34 ns | 6.70 ± 2.36 *** | 27.13 ± 10.451 *** |
| Control | 12.71 ± 1.25 | 37.14 ± 2.11 | 13.88 ± 0.28 | 17.75 ± 1.32 | 18.51 ± 1.48 |
| Exp. Groups | ±L* | ±a* | ±b* | ΔE |
|---|---|---|---|---|
| ABP2% | 30.83 ± 2.37 ** | 4.39 ± 0.80 ns | 16.60 ± 5.39 ns | 13.73 ± 2.38 ** |
| ABP10% | 36.62 ± 3.37 *** | 5.51 ± 1.67 ns | 17.42 ± 2.20 ns | 18.14 ± 3.25 *** |
| ABP20% | 23.09 ± 5.32 ns | 6.97 ± 1.35 ns | 15.15 ± 4.13 ns | 6.34 ± 3.46 ns |
| BBP2% | 24.51 ± 9.80 ns | 5.30 ± 0.37 ns | 13.03 ± 3.04 ns | 9.17 ± 5.32 ns |
| BBP10% | 39.76 ± 5.71 *** | 5.53 ± 0.36 ns | 17.04 ± 0.68 ns | 21.44 ± 5.23 *** |
| BBP20% | 32.24 ± 0.53 ** | 4.86 ± 0.42 ns | 16.40 ± 0.35 ns | 14.82 ± 0.45 *** |
| PBP2% | 43.30 ± 1.39 *** | 5.83 ± 0.73 ns | 17.31 ± 2.59 ns | 24.60 ± 1.23 *** |
| PBP10% | 35.53 ± 5.85 *** | 6.18 ± 0.02 ns | 16.74 ± 0.26 ns | 16.87 ± 5.55 *** |
| PBP20% | 29.02 ± 3.94 * | 5.73 ± 0.64 ns | 13.53 ± 0.29 ns | 10.71 ± 3.88 * |
| Control | 19.16 ± 1.25 | 8.96 ± 0.38 ns | 14.74 ± 0.69 ns | - |
| Exp. Groups | AFB1 (µg/kg) | ZEA (µg/kg) |
|---|---|---|
| ABP2% | 2.37 ± 0.22 | 178.39 ± 11.37 |
| ABP10% | 2.55 ± 0.47 | 170.14 ± 135.02 |
| ABP20% | 2.47 ± 0.07 | 203.85 ± 61.03 |
| BBP2% | 2.53 ± 0.31 | 208.13 ± 75.68 |
| BBP10% | 2.34 ± 0.40 | 254.72 ± 10.91 |
| BBP20% | 2.26 ± 0.21 | 202.14 ± 105.84 |
| PBP2% | 2.52 ± 0.53 | 256.49 ± 147.14 |
| PBP10% | 2.32 ± 0.07 | 105.03 ± 38.35 |
| PBP20% | 2.59 ± 0.33 | 248.26 ± 138.53 |
| Control | 2.87 ± 0.25 | 109.04 ± 0.29 |
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Ionica, C.-N.; Szabo, K.; Teleky, B.-E.; Nemeş, S.-A.; Varvara, R.-A.; Vodnar, D.C.; Ciont, C.; Haşaş, A.D.; Coroian, M.; Pop, R.; et al. In-Depth Characterization of Black Soldier Fly Larvae Reared on Phenolic-Rich Agro-Industrial Substrates. Insects 2026, 17, 292. https://doi.org/10.3390/insects17030292
Ionica C-N, Szabo K, Teleky B-E, Nemeş S-A, Varvara R-A, Vodnar DC, Ciont C, Haşaş AD, Coroian M, Pop R, et al. In-Depth Characterization of Black Soldier Fly Larvae Reared on Phenolic-Rich Agro-Industrial Substrates. Insects. 2026; 17(3):292. https://doi.org/10.3390/insects17030292
Chicago/Turabian StyleIonica, Claudiu-Nicusor, Katalin Szabo, Bernadette-Emőke Teleky, Silvia-Amalia Nemeş, Rodica-Anita Varvara, Dan Cristian Vodnar, Călina Ciont, Alina Diana Haşaş, Mircea Coroian, Romelia Pop, and et al. 2026. "In-Depth Characterization of Black Soldier Fly Larvae Reared on Phenolic-Rich Agro-Industrial Substrates" Insects 17, no. 3: 292. https://doi.org/10.3390/insects17030292
APA StyleIonica, C.-N., Szabo, K., Teleky, B.-E., Nemeş, S.-A., Varvara, R.-A., Vodnar, D. C., Ciont, C., Haşaş, A. D., Coroian, M., Pop, R., Daina, S., Szakacs, A.-R., & Macri, A. (2026). In-Depth Characterization of Black Soldier Fly Larvae Reared on Phenolic-Rich Agro-Industrial Substrates. Insects, 17(3), 292. https://doi.org/10.3390/insects17030292

