Submitted:
06 September 2023
Posted:
07 September 2023
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Microalgae as a Potential Natural Source of Antioxidants
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- Examine the biochemical composition of microalgae and their potential as a source of natural antioxidants, including carotenoids, polyphenols, phycobilin’s, tocopherols, and essential fatty acids;
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- Explore the factors influencing antioxidant production in different microalgae genera, including the impact of growth conditions, environmental stressors, and cultivation methods;
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- Investigate the various extraction and purification techniques employed to concentrate microalgae-derived antioxidants efficiently;
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- Summarize and analyze in vitro studies evaluating the antioxidant activity of microalgae-based compounds in cell-free assays, providing insights into their mechanisms of action;
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- Review and discuss the results of in vivo studies that assess the health benefits of microalgae-derived antioxidants, focusing on their protective effects against oxidative damage, inflammation, cardiovascular diseases, neurodegenerative disorders, and other chronic conditions;
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- Assess the potential of microalgae-based antioxidants in promoting skin health, immune system modulation, and cellular rejuvenation, contributing to overall wellbeing;
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- Evaluate the sustainability and feasibility of large-scale microalgae cultivation for antioxidant production, considering environmental and economic factors;
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- Provide future perspectives on the application of microalgae-derived antioxidants in preventive and therapeutic strategies for human health, identifying potential challenges and opportunities in the field.
2.1. Diversity and Characteristics of Microalgae
2.1.1. Diversity
2.1.2. Characteristics
2.2. Bioactive Compounds in Microalgae with Antioxidant Properties
2.3. Factors Influencing Antioxidant Production in Microalgae
3. Extraction and Purification Techniques of Microalgae-Derived Antioxidants
3.1. Various Extraction Methods for Efficient Recovery
3.2. Purification Techniques for Concentrating Antioxidant Compounds
4. Benefits from Microalgae-Derived Antioxidants
4.1. In Vitro Studies on Microalgae-Derived Antioxidants
4.1.1. Evaluation of Antioxidant Activity in Cell-Free Assays
4.1.2. Mechanisms of Action of Microalgae-Derived Antioxidants
4.2. In Vivo Studies and Health Benefits
4.2.1. Animal Models Investigating the Health Effects of Microalgae-Derived Antioxidants
4.2.2. Protective Effects Against Oxidative Damage, Inflammation, and Chronic Diseases
4.3. Microalgae-Based Antioxidants for Skin Health, Immune System Modulation, and Cellular Rejuvenation
4.3.1. Skin Health
4.3.2. Immune System Modulation
4.3.3. Cellular Rejuvenation
5. Sustainable Production and Cultivation of Microalgae
5.1. Photobioreactors and Open Ponds for Large-Scale Cultivation
5.1.1. Photobioreactors
5.1.2. Open Ponds
5.1.3. Hybrid Systems
5.2. Environmental and Economic Considerations for Sustainable Production
6. Microalgae Potential Therapeutics and Challenges
6.1. Potential Applications in Preventive and Therapeutic Strategies
6.1.1. Challenges
6.2. Regulatory Considerations for Microalgae-Derived Antioxidant Products
6.3. Challenges and Opportunities in the Field
7. Future Perspectives
8. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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