Submitted:
06 December 2024
Posted:
09 December 2024
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Materials and Methods
2.1. A. braunii Cultivation, Biomass Composition, and Polysaccharide Extraction
2.2. In Vitro Antioxidant Activity
2.3. Prototype Formulation
2.4. In Vivo Trial - Cutaneous Biocompatibility
2.5. Statistical Analyses
3. Results
3.1. A. braunii Cultivation, Biomass and Polysaccharide Extraction
3.2. In Vitro Antioxidant Activity
3.3. Cutaneous Biocompatibility of A. braunii Gel
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Oliveira, A.C.; Morocho-Jácome, A.L.; Castro Lima, C.R.; Marques, G.A.; Bispo, M.O.; Barros, A.B.; Costa, J.G.; Santos de Almeida, T.; Rosado, C.; Carvalho, J.C.M.; et al. Cosmetics Applications. In Microalgae; Galanakis, C.M., Ed.; Academic Press: India, 2020; pp. 313–338. [Google Scholar]
- Morocho-Jácome, A.L.; Cezare-Gomes, E.A.; Carvalho, J.C.M.; Sauce, R.; Rosado, C.; Velasco, M.V.R.; Baby, A.R. UV-Screening from Microalgae. In Handbook of Microalgae-Based Processes and Products; Jacob-Lopes, E., Maroneze, M.M., Queiroz, M.I., Zepka, L.Q., Eds.; Elsevier: Amsterdam, 2020; pp. 647–657. [Google Scholar]
- Morocho-Jácome, A.L.; Freire, T.B.; de Oliveira, A.C.; de Almeida, T.S.; Rosado, C.; Velasco, M.V.R.; Baby, A.R. In Vivo SPF from Multifunctional Sunscreen Systems Developed with Natural Compounds—A Review. J Cosmet Dermatol 2020. [Google Scholar] [CrossRef] [PubMed]
- Cezare-Gomes, E.A.; Mejia-da-Silva, L. del C.; Pérez-Mora, L.S.; Matsudo, M.C.; Ferreira-Camargo, L.S.; Singh, A.K.; de Carvalho, J.C.M. Potential of Microalgae Carotenoids for Industrial Application.
- Morocho-Jácome, A.L.; Ruscinc, N.; Martinez, R.M.; de Carvalho, J.C.M.; Santos de Almeida, T.; Rosado, C.; Costa, J.G.; Velasco, M.V.R.; Baby, A.R. (Bio)Technological Aspects of Microalgae Pigments for Cosmetics. Appl Microbiol Biotechnol 2020. [Google Scholar] [CrossRef] [PubMed]
- Paliwal, C.; Ghosh, T.; George, B.; Pancha, I.; Maurya, R.; Chokshi, K.; Ghosh, A.; Mishra, S. Microalgal Carotenoids: Potential Nutraceutical Compounds with Chemotaxonomic Importance. Algal Res 2016, 15, 24–31. [Google Scholar] [CrossRef]
- Levasseur, W.; Perré, P.; Pozzobon, V. A Review of High Value-Added Molecules Production by Microalgae in Light of the Classification. Biotechnol Adv 2020, 41, 107545. [Google Scholar] [CrossRef]
- De Jesus Raposo, M.F.; De Morais, A.M.B.; De Morais, R.M.S.C. Marine Polysaccharides from Algae with Potential Biomedical Applications. Mar Drugs 2015, 13, 2967–3028. [Google Scholar] [CrossRef]
- Wang, Q.; Shen, Q.; Wang, J.; Zhang, Y.; Zhang, Z.; Lei, Z.; Shimizu, K.; Lee, D. Fast Cultivation and Harvesting of Oil-Producing Microalgae Ankistrodesmus Falcatus Var. Acicularis Fed with Anaerobic Digestion Liquor via Biogranulation in Addition to Nutrients Removal. Science of the Total Environment 2020, 741, 140183. [Google Scholar] [CrossRef]
- Mansa, R.F.; Sipaut, C.S.; Yasir, S.; Dayou, J.; Joannes, C. Comparative Studies of Cell Growth, Total Lipid and Methyl Palmitate of Ankistrodesmus Sp. in Phototrophic, Mixotrophic and Heterotrophic Cultures for Biodiesel Production. International Journal of Renewable Energy Research 2018, 8, 438–450. [Google Scholar]
- Cobos, M.; Paredes, J.D.; Maddox, J.D.; Vargas-Arana, G.; Flores, L.; Aguilar, C.P.; Marapara, J.L.; Castro, J.C. Isolation and Characterization of Native Microalgae from the Peruvian Amazon with Potential for Biodiesel Production. Energies (Basel) 2017, 10, 224–240. [Google Scholar] [CrossRef]
- Yee, W. Microalgae from the Selenastraceae as Emerging Candidates for Biodiesel Production: A Mini Review. World J Microbiol Biotechnol 2016, 32, 64. [Google Scholar] [CrossRef]
- George, B.; Pancha, I.; Desai, C.; Chokshi, K.; Paliwal, C.; Ghosh, T.; Mishra, S. Effects of Different Media Composition, Light Intensity and Photoperiod on Morphology and Physiology of Freshwater Microalgae Ankistrodesmus Falcatus - a Potential Strain for Bio-Fuel Production. Bioresour Technol 2014, 171, 367–374. [Google Scholar] [CrossRef]
- Mansa, R.F.; Sipaut, C.S.; Yasir, S.; Dayou, J.; Joannes, C. Comparative Studies of Cell Growth, Total Lipid and Methyl Palmitate of Ankistrodesmus Sp. in Phototrophic, Mixotrophic and Heterotrophic Cultures for Biodiesel Production. International Journal of Renewable Energy Research 2018, 8, 438–450. [Google Scholar]
- Bresaola, M.D.; Morocho-Jácome, A.L.; Matsudo, M.C.; Carvalho, J.C.M. Semi-Continuous Process as a Promising Technique in Ankistrodesmus Braunii Cultivation in Photobioreactor. J Appl Phycol 2019, 31, 2197–2205. [Google Scholar] [CrossRef]
- Morocho-Jácome, A.L.; Dapievi Bresaola, M.; Carvalho, J.C.M.; Nicolai, M.; Rosado, C.; Baby, A.R. Carbohydrates in Ankistrodesmus Braunii Biomass Cultivated in Tubular Photobioreactors. Biomedical and Biopharmaceutical Research 2017, 2, 242–248. [Google Scholar] [CrossRef]
- UTEX Culture Collection of Algae UTEX.
- Bresaola, M.D.; Morocho-Jácome, A.L.; Matsudo, M.C.; Carvalho, J.C.M. Semi-Continuous Process as a Promising Technique in Ankistrodesmus Braunii Cultivation in Photobioreactor. J Appl Phycol 2019, 31, 2197–2205. [Google Scholar] [CrossRef]
- Morocho-Jácome, A.L.; Dapievi Bresaola, M.; Carvalho, J.C.M.; Nicolai, M.; Rosado, C.; Baby, A.R. Carbohydrates in Ankistrodesmus Braunii Biomass Cultivated in Tubular Photobioreactors. Biomedical and Biopharmaceutical Research 2017, 2, 242–248. [Google Scholar] [CrossRef]
- Chaiklahan, R.; Chirasuwan, N.; Triratana, P.; Loha, V.; Tia, S.; Bunnag, B. Polysaccharide Extraction from Spirulina Sp. and Its Antioxidant Capacity. Int J Biol Macromol 2013, 58, 73–78. [Google Scholar] [CrossRef]
- Falé, P.L.; Borges, C.; Madeira, P.J.A.; Ascensão, L.; Araújo, M.E.M.; Florêncio, M.H.; Serralheiro, M.L.M. Rosmarinic Acid, Scutellarein 4′-Methyl Ether 7-O-Glucuronide and (16S)-Coleon E Are the Main Compounds Responsible for the Antiacetylcholinesterase and Antioxidant Activity in Herbal Tea of Plectranthus Barbatus (Falso Boldo). Food Chem 2009, 114, 798–805. [Google Scholar] [CrossRef]
- Peres, D.A.; de Oliveira, C.A.; da Costa, M.S.; Tokunaga, V.K.; Mota, J.P.; Rosado, C.; Consiglieri, V.O.; Kaneko, T.M.; Velasco, M.V.R.; Baby, A.R. Rutin Increases Critical Wavelength of Systems Containing a Single UV Filter and with Good Skin Compatibility. Skin Research and Technology 2016, 22. [Google Scholar] [CrossRef]
- Oliveira, C.A. de; Peres, D.D.A.; Graziola, F.; Chacra, N.A.B.; Araújo, G.L.B. de; Flórido, A.C.; Mota, J.; Rosado, C.; Velasco, M.V.R.; Rodrigues, L.M.; et al. Cutaneous Biocompatible Rutin-Loaded Gelatin-Based Nanoparticles Increase the SPF of the Association of UVA and UVB Filters. European Journal of Pharmaceutical Sciences 2016, 81, 1–9. [Google Scholar] [CrossRef]
- Delattre, C.; Pierre, G.; Laroche, C.; Michaud, P. Production, Extraction and Characterization of Microalgal and Cyanobacterial Exopolysaccharides. Biotechnol Adv 2016. [CrossRef]
- Rijo, P.; Falé, P.L.; Serralheiro, M.L.; Simões, M.F.; Gomes, A.; Reis, C. Optimization of Medicinal Plant Extraction Methods and Their Encapsulation through Extrusion Technology. Measurement 2014, 58, 249–255. [Google Scholar] [CrossRef]
- Goiris, K.; Muylaert, K.; Fraeye, I.; Foubert, I.; De Brabanter, J.; De Cooman, L. Antioxidant Potential of Microalgae in Relation to Their Phenolic and Carotenoid Content. J Appl Phycol 2012, 24, 1477–1486. [Google Scholar] [CrossRef]
- Banskota, A.H.; Sperker, S.; Stefanova, R.; McGinn, P.J.; O’Leary, S.J.B. Antioxidant Properties and Lipid Composition of Selected Microalgae. J Appl Phycol 2019, 31, 309–318. [Google Scholar] [CrossRef]
- Marcati, A.; Ursu, A.V.; Laroche, C.; Soanen, N.; Marchal, L.; Jubeau, S.; Djelveh, G.; Michaud, P. Extraction and Fractionation of Polysaccharides and B-Phycoerythrin from the Microalga Porphyridium Cruentum by Membrane Technology. Algal Res 2014, 5, 258–263. [Google Scholar] [CrossRef]
- Berardesca, E.; Loden, M.; Serup, J.; Masson, P.; Rodrigues, L.M. The Revised EEMCO Guidance for the in Vivo Measurement of Water in the Skin. Skin Research and Technology 2018, 24, 351–358. [Google Scholar] [CrossRef]
- Sun, Q.; Stantchev, R.I.; Wang, J.; Parrott, E.P.J.; Cottenden, A.; Chiu, T.W.; Ahuja, A.T.; Pickwell-MacPherson, E. In Vivo Estimation of Water Diffusivity in Occluded Human Skin Using Terahertz Reflection Spectroscopy. J Biophotonics 2019, 12, 2–12. [Google Scholar] [CrossRef]
- Yao, Y.; Xu, B. Skin Health Promoting Effects of Natural Polysaccharides and Their Potential Application in the Cosmetic Industry. Polysaccharides 2022, 3, 818–830. [Google Scholar] [CrossRef]
- Miguel, S.P.; Ribeiro, M.P.; Otero, A.; Coutinho, P. Application of Microalgae and Microalgal Bioactive Compounds in Skin Regeneration. Algal Res 2021, 58. [Google Scholar] [CrossRef]
- Choi, H.Y.; Lee, Y.J.; Kim, C.M.; Lee, Y.-M. Revolutionizing Cosmetic Ingredients: Harnessing the Power of Antioxidants, Probiotics, Plant Extracts, and Peptides in Personal and Skin Care Products. Cosmetics 2024, 11, 157. [Google Scholar] [CrossRef]
- Albuquerque, P.B.S.; de Oliveira, W.F.; dos Santos Silva, P.M.; dos Santos Correia, M.T.; Kennedy, J.F.; Coelho, L.C.B.B. Skincare Application of Medicinal Plant Polysaccharides — A Review. Carbohydr Polym 2022, 277. [Google Scholar] [CrossRef]


Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2024 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).