Agro-Industrial Side Streams in Cosmetics: From Raw Materials to Scale-Up and Life Cycle Assessment Within a Circular Economy Framework
Abstract
1. Introduction
2. Types of Agro-Industrial Side Streams Used in Cosmetic Product Development
| Side Stream Source | Main By-Product | Key Bioactive Compounds | Cosmetic Application | Formulation Developed | References |
|---|---|---|---|---|---|
Almond | Shells, skins | Flavonoids | UV protection, scrubs | ✓ Limited | [56] |
Apple | Pomace | Polyphenols, pectin | Anti-aging, SPF | ✓ | [28,29,30] |
Argan | Press-cake, shell | Proteins, saponins | Emulsifiers, films | ✓ | [47,48] |
Artichoke | Leaves, heads | Polyphenols | Anti-aging | ✓ Limited | [57] |
Banana | Peels | Antioxidants | SPF, anti-aging | ✓ | [36,37] |
Citrus | Peels | Flavonoids | Whitening, anti-aging | ✓ | [32,61] |
Coconut | Husk, shell, pulp | Various | Scrubs, creams | ✓ Few | [50,51] |
Coffee | Silverskin, grounds | Caffeine, chlorogenic acids | Anti-aging, exfoliation | ✓ | [18,23] |
Date palm | Seeds | Oils, polyphenols | Moisturizing, anti-aging | ✓ Limited | [52,53] |
Grape | Pomace, seeds | Polyphenols, ellagic acid | Anti-aging, antioxidant | ✓ | [9,10,11,12] |
Mango | Peels, kernels | Mangiferin, gallotannins | Anti-aging, anti-acne | ✓ | [39,40,41] |
Olive | Pomace, wastewater | Hydroxytyrosol, oleuropein | Photoprotection, anti-aging | ✓ | [13,14,15,16] |
Onion | Peels | Quercetin | UV protection | ✓ | [45,62] |
Pomegranate | Peels | Punicalagin, flavonoids | Antioxidant, SPF | X | [38,63] |
Saffron | Petals | Polyphenols | Emulsions, hydrogels | ✓ | [55] |
Tomato | Peels, seeds | Lycopene, fatty acids | Photoprotection, microbiome balance | ✓ | [26,27] |
| Side Stream | TRL | Scalability | Availability Economic Relevance | Validation Level |
|---|---|---|---|---|
| Almond | Low | Medium | Medium | In vitro + limited in vivo |
| Apple | Medium–High | High | High | In vitro + clinical |
| Argan | Low–Medium | Medium | Medium | In vitro |
| Artichoke | Low | Medium | Medium | In vitro + limited clinical |
| Banana | Low | High | High | In vitro |
| Citrus | Medium | High | High | In vitro + in vivo |
| Coconut | Low | High | High | In vitro |
| Coffee | Medium | High | High | In vitro + limited in vivo |
| Date palm | Low | High | High | In vitro + limited in vivo |
| Grape | High | High | High | In vitro + in vivo + clinical |
| Mango | Medium | Medium | Medium | In vitro + in vivo |
| Olive | High | High | High | In vitro + in vivo + clinical |
| Onion | Medium | High | High | In vitro |
| Pomegranate | Low | Medium | Medium | In vitro |
| Saffron | Low | Low | Low | In vitro |
| Tomato | Medium | High | High | In vitro + in vivo |
3. Scale-Up Challenges
4. Life Cycle Assessment
5. Regulatory Challenges for Side Stream-Derived Cosmetic Ingredients
Critical Appraisal of the Available Studies
6. Key Lacks for Future Industrial Development
7. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Side Stream | Scale-Up Level | LCA Performed | Key Findings | Limitations | Reference |
|---|---|---|---|---|---|
| Apple pomace | ✔ Industrial | ✕ | Full scale-up, high yield | No LCA | [59] |
| Algae | ✕ Lab | ✔ | Lower environmental impact | Not agro side streams | [67] |
| Grape waste | ✔ Pilot design | ✕ | Process design (100 kg) | Not validated | [60] |
| Strawberry waste | ✕ Lab | ✔ Partial | CO2 extract LCA | Only the extraction stage | [66] |
| Various | ✕ Lab | ✔ | Extraction comparison | No formulation | [7] |
| Packaging | ✔ Industrial | ✔ | Impact reduction (29%) | Not ingredients | [68] |
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Hoxha, M.; Malaj, V.; Manconi, M.; Manca, M.L. Agro-Industrial Side Streams in Cosmetics: From Raw Materials to Scale-Up and Life Cycle Assessment Within a Circular Economy Framework. Cosmetics 2026, 13, 109. https://doi.org/10.3390/cosmetics13030109
Hoxha M, Malaj V, Manconi M, Manca ML. Agro-Industrial Side Streams in Cosmetics: From Raw Materials to Scale-Up and Life Cycle Assessment Within a Circular Economy Framework. Cosmetics. 2026; 13(3):109. https://doi.org/10.3390/cosmetics13030109
Chicago/Turabian StyleHoxha, Malvina, Visar Malaj, Maria Manconi, and Maria Letizia Manca. 2026. "Agro-Industrial Side Streams in Cosmetics: From Raw Materials to Scale-Up and Life Cycle Assessment Within a Circular Economy Framework" Cosmetics 13, no. 3: 109. https://doi.org/10.3390/cosmetics13030109
APA StyleHoxha, M., Malaj, V., Manconi, M., & Manca, M. L. (2026). Agro-Industrial Side Streams in Cosmetics: From Raw Materials to Scale-Up and Life Cycle Assessment Within a Circular Economy Framework. Cosmetics, 13(3), 109. https://doi.org/10.3390/cosmetics13030109

















