The Research Landscape of Spirulina platensis (2016–2025): A Bibliometric Analysis and Scoping Review of Therapeutic Trends and Biotechnological Applications
Abstract
1. Introduction
2. Methodology
2.1. Bibliometric Study, Exploratory and Descriptive Research Design
2.2. Relevance of the Selected Keywords
Search Strategy and Relevance of the Selected Keywords
- Taxonomic and general descriptors, facilitating the precise identification of articles directly related to the organism of interest: Spirulina platensis, Arthrospira.
- 2.
- Functional and biological terms, capturing the principal bioactive properties frequently investigated in the recent literature: antioxidant, anti-inflammatory, anticancer, immunomodulatory, antiviral, antidiabetic, lipid-lowering, functional food, and cosmetics.
2.3. Bibliometric Analysis of Keywords
2.4. Bibliometric Analysis of Co-Authorship Network
2.5. Bibliometric Analysis of the Most Active Organizations in the Field
2.6. Bibliometric Analysis of Country Collaboration Network
3. Chemical Composition of Spirulina Platensis
3.1. Macronutrients
3.1.1. Proteins
3.1.2. Lipids
3.1.3. Carbohydrates
3.1.4. Vitamins, Minerals, Fiber
3.2. Other Bioactive Compounds
3.2.1. Phenolic Compounds
3.2.2. Pigments
4. Bioactivity of Spirulina Compounds
5. Current Limitations and Evidence Gaps
5.1. From In Vitro Models to Human Clinical Reality
5.2. Limitations of Existing Clinical Trials
5.3. Safety, Toxicity, and Environmental Concerns
6. Applications in Skin Health
7. Application in Food Industries
8. Spirulina Administration: From Conventional Approach to Carrier-Type Formulas
9. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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| Mechanism of Action | Key Findings | In Vitro | In Vivo | In Silico | Ref. |
|---|---|---|---|---|---|
| ↑ of SOD and GSH-Px ↑ Oxidative markers (PPAR-γ, Nrf-2, HO-1) ↓ Inflammatory markers (NO, MDA, TNF-α, IL-6, IL-1B, IL-10, IFN-γ, PGE2, COX-2) Oxidative gene expression upregulation Inflammatory gene expression downregulation | Antioxidant and anti-inflammatory | ✓ | [27,28,29,30] | ||
| Controls of levels of transaminases, alkaline phosphatase, bilirubin, albumin, cholesterol, triglycerides, urea, and uric acid ↓ of lipid peroxidation ↑of glutathione level Prevention of severe alterations in the liver and kidneys ↓ of alkaline phosphatase, TNF-α, IL-6 and IL-1β, TBARS ↑ of GR, GSH, GST, SOD, GPX, CAT and total protein | Hepatoprotective | ✓ | [31] | ||
| Inhibition of the enzymes’ activity ACE-I, renin, and DPP-IV | Antihypertensive | ✓ | [32,33] | ||
| ↑ RBC and WBC counts, Hb, PCV and MCHC | Antianemia | ✓ | ✓ | [34] | |
| Recovery of hypothyroid biomarkers (thyroid-stimulating hormone, triiodothyronine and thyroxine) | Anti-thyroid | ✓ | ✓ | [35] | |
| Reduction in paw edema and mechanical allodynia ↑ of IL-10 levels, ↓ of TNF-α and IL-1β levels Centrally mediated antinociception | Antinociceptive | ✓ | ✓ | [36,37] | |
| Improvement of behavioral deficits Regulation of neurotransmission, oligodendrocyte dysfunction and APO-E overexpression Reduction in inflammatory cytokines | Neuroprotective | ✓ | [38] | ||
| A sun protection factor (SPF) of 40.23 (±0.01 at 5 mg/mL) Antitumor effects against UVB irradiation in the skin Inhibition of cytokine production and tyrosinase activity in UVB-irradiated skin fibroblasts Suppression of UVB-induced ear swelling and skin erythema Attenuation of UVB-induced inflammatory cytokines and Toll-like receptor 4 Molecular mechanism of phycocyanin protection against UVB-induced apoptosis in Human Primary Skin Cells is mediated by the PKC α/β II-Nrf-2/HO-1 pathway Combination Spirulina—dimethylmethoxy chromanol exhibits better SPF effect and improved skin pigmentation and net elasticity compared to the sunscreen alone Accelerated tissue regeneration using Spirulina- polycaprolactone nanofibers | Skin photoprotective | ✓ | ✓ | [39,40,41,42,43,44] | |
| Restoration of hematological and biochemical parameters ↓ of cadmium accumulation in tissue Attenuation of Cd toxicity (mortality rates, body weight, weight of the submandibular gland) ↑ cell viability ↓ of ALT, AST and ALP ↓ of urea and creatinine | Cd-intoxication protective | ✓ | ✓ | [24,45,46,47] |
| Mechanism of Action | Key Findings | In Vitro | In Vivo | In Silico | Ref. |
|---|---|---|---|---|---|
| Inhibition of enzymes: α-amylase, α-glucosidase and dipeptidyl peptidase-4 ↑ activity of glycogen content, hexokinase and pyruvate kinase ↓ of SOD, an increase in CAT and glutathione peroxidase activities Inhibition of pancreatic inflammation key enzymes (5-lipoxygenase, hyaluronidase, myeloperoxidase, NADPH oxidase) Regulation of carbohydrate metabolism key hepatic enzymes (hexokinase, pyruvate kinase, glucose-6-phosphate dehydrogenase, lactate dehydrogenase, glucose-6-phosphatase, fructose-1,6-bisphosphatase ↓ in glycosylated hemoglobin, glucose levels, and ↑ of insulin concentration | Antidiabetic Anti-obesity | ✓ | [19,22,48,49,50,51,52,53,54] | ||
| ↓ of total triglyceride, total and LDL cholesterol Inhibition of hepatic lipid accumulation and steatosis Regulation of mRNA, protein and gene expression levels from lipid metabolism | Lipid-lowering | ✓ | [55] |
| Mechanism of Action | Key Findings | In Vitro | In Vivo | In Silico | Ref. |
|---|---|---|---|---|---|
| Enhancement of Lactobacillus casei microbiome growth rate Damage to the cell wall and cell membrane permeability, and inhibition of protein and nucleic acid synthesis | Bacteriostatic, Bactericidal | ✓ | [23,56,57,58,59] | ||
| Inhibition of herpes simplex virus infection (blockage of attachment and penetration of viral cells) Inhibition of Kaposi sarcoma-associated herpesvirus/human herpes Disruption of virus entry into host cells Inhibition of virus-induced cytopathic effects, replication of viral gene and expression of viral protein | Antiviral | ✓ | [60,61,62] |
| Mechanism of Action | Key Findings | In Vitro | In Vivo | In Silico | Ref. |
|---|---|---|---|---|---|
| Cytotoxic effect against breast cancer cells: IC50 values of 100 µg/mL and 630 µg/mL Increased induction of caspase 3, caspase 9, and caspase 8 ↓ of tumor volume and the weight of lung cancer Change of 27 differential accumulated metabolites (by high-affinity IgE receptor signaling pathway and arachidonic acid metabolism) Growth inhibition Reduction in phosphorylation and expression of some proteins (Akt, Rb; cyclin D1, CDK4); increase in Bax to Bcl-2 ratio Up-regulation of telomerase in HDF normal cells Down-regulation of telomerase in MCF-7 cancer cells | Cytotoxic | ✓ | [19,48,51] |
| Mechanism of Action | Key Findings | In Vitro | In Vivo | In Silico | Ref. |
|---|---|---|---|---|---|
| Improved growth performance, the highest weight gain rate ↑ levels of: RBC, WBC, hemoglobin, lysozyme, respiratory burst activities (RBA), and immunoglobulin ↓ levels of cholesterol, triglyceride, MDA, SOD, CAT, GPX | Growth performance | ✓ | ✓ | [63,64,65,66] | |
| Defecation improvement ↑ of AchE activity ↓ of NO level Reduction in intestinal inflammatory cell infiltration Composition modulation of intestinal microbiota | Constipation amelioration | ✓ | [62] | ||
| ↑ of probiotic strains L. paracasei and B. animalis ↑ of short-chain fatty acids levels (butyric, valeric acids) ↑ of the beneficial species from microbial community (Bacteroides, Escherichia-Shigella, Megamonas, Megasphaera, Blautia, Bifidobacterium and Lactobacillus); | Prebiotic, regulation of intestinal microbiota | ✓ | [49] | ||
| Partial modulation of innate and adaptive immune responses ↓ of NF-kB production in the liver, kidney, and heart Modulation of gut microbiota (↑ of Lactobacillus, Allobaculum, Alloprevotella, Olsenella; ↓ of Bacteroides, Acinetobacter) | Immunomodulatory | ✓ | [48,67] | ||
| Significant rise in tyramine ↑ ratio of free essential to non-essential amino acids ↓ levels of B2 and B3 vitamins, ↑ levels of vitamins B1 and B6 ↑ levels of catalase, SOD, GPx, GSH; total phenol, flavonoid, and tannin ↑ levels of protein and carbohydrate content ↑ nutritional value (quality index, amino acid score, and biological value) Effect on anthropometric indices, appetite, lipid profile and serum growth factor (VEGF) in obese individuals Nutritional alternative to enrich gluten-free baked goods | Nutritional functional food | ✓ | ✓ | [20,68,69,70] |
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Miere, F.; Pop, A.; Fritea, L.; Banica, F.; Antonescu, A.; Cavalu, D.S. The Research Landscape of Spirulina platensis (2016–2025): A Bibliometric Analysis and Scoping Review of Therapeutic Trends and Biotechnological Applications. Appl. Sci. 2026, 16, 4203. https://doi.org/10.3390/app16094203
Miere F, Pop A, Fritea L, Banica F, Antonescu A, Cavalu DS. The Research Landscape of Spirulina platensis (2016–2025): A Bibliometric Analysis and Scoping Review of Therapeutic Trends and Biotechnological Applications. Applied Sciences. 2026; 16(9):4203. https://doi.org/10.3390/app16094203
Chicago/Turabian StyleMiere (Groza), Florina, Andrada Pop, Luminita Fritea, Florin Banica, Angela Antonescu, and Daniela Simona Cavalu. 2026. "The Research Landscape of Spirulina platensis (2016–2025): A Bibliometric Analysis and Scoping Review of Therapeutic Trends and Biotechnological Applications" Applied Sciences 16, no. 9: 4203. https://doi.org/10.3390/app16094203
APA StyleMiere, F., Pop, A., Fritea, L., Banica, F., Antonescu, A., & Cavalu, D. S. (2026). The Research Landscape of Spirulina platensis (2016–2025): A Bibliometric Analysis and Scoping Review of Therapeutic Trends and Biotechnological Applications. Applied Sciences, 16(9), 4203. https://doi.org/10.3390/app16094203

