Insulin Encapsulation in a Chitosan–Alginate Matrix and In Vitro Release
Abstract
1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Preparation of Chitosan–Alginate Nanoparticles Loaded with Insulin
2.2.1. Preparation of Base Solutions
- S1-CS: Chitosan solution at 2.5 mg/mL, dissolved in 0.4 M acetic acid previously adjusted to pH 3.0.
- S2-TPP: Sodium tripolyphosphate at 0.5 mg/mL, prepared in 0.01 M NaOH.
- S3-ALG: Sodium alginate at 1.5 mg/mL, dissolved in 0.01 M NaOH.
- S4-INS: Recombinant human insulin at 2 mg/mL, dissolved in 0.01 M HCl.
2.2.2. Synthesis of Chitosan–Alginate Nanoparticles
2.2.3. Encapsulation of Recombinant Human Insulin
2.2.4. pH Monitoring
2.3. Determination of Encapsulation Efficiency (EE%) and Loading Capacity (LC%)
2.4. Characterization of Nanoparticles
2.4.1. UV–Vis Spectroscopy
2.4.2. Dynamic Light Scattering (DLS) and Zeta Potential
2.4.3. Lyophilization
2.4.4. FTIR–ATR Spectroscopy
2.4.5. Fluorescence Spectroscopy
2.4.6. Scanning Electron Microscopy (SEM)
2.4.7. Thermogravimetric Analysis (TGA)
2.5. In Vitro Release Studies
2.5.1. UV–Vis Monitoring
2.5.2. Fluorescence Monitoring
2.5.3. Drug Release Kinetics
3. Results
3.1. pH Monitoring
3.2. UV–Vis Characterization
3.3. Physical Characterization
3.4. FTIR–ATR Characterization
3.5. Fluorescence Analysis
3.6. Morphological Characterization
3.7. In Vitro Release Studies
3.8. Simulated Gastrointestinal Release
3.9. Release Studies of Lyophilized Nanoparticles After Three Months of Storage
3.10. Amide I Region Analysis of Encapsulated Insulin Assessed by FTIR
3.11. Intrinsic Fluorescence Analysis of Aromatic Amino Acids of Encapsulated Insulin
3.12. Hydrodynamic Size of Insulin Released from Chitosan–Alginate Nanoparticles
3.13. X-Ray Diffraction Analysis of Insulin-Loaded Chitosan–Alginate Nanoparticles
3.14. Thermogravimetric Analysis (TGA)
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| ALG | Sodium alginate |
| ATR | Attenuated Total Reflectance |
| CS | Chitosan |
| DLS | Dynamic Light Scattering |
| EE% | Encapsulation Efficiency |
| FTIR | Fourier Transform Infrared Spectroscopy |
| HCl | Hydrochloric Acid |
| NaOH | Sodium Hydroxide |
| nm | Nanometer |
| PDI | Polydispersity Index |
| pH | Potential of Hydrogen |
| PO3 | Phosphate Group (Trivalent) |
| SEM | Scanning Electron Microscopy |
| TPP | Sodium Tripolyphosphate |
| Tyr | Tyrosine |
| Trp | Tryptophan |
| UV–Vis | Ultraviolet–Visible Spectroscopy |
| α-helix | Alpha-helix |
| β-sheet | Beta-sheet |
| ξ | Zeta Potential |
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| Solution | pH |
|---|---|
| NaOH (0.01 M) | 10 |
| HCl (0.01 M) | 2 |
| Insulin * | 5.4 |
| Acetic acid (0.4 M) | 3 |
| TPP + NaOH | 11 |
| ALG + NaOH | 11 |
| Insulin + HCl | 2 |
| CS + acetic acid | 3 |
| Insulin + HCl + NaOH + TPP | 4 |
| Insulin + HCl + NaOH + TPP + ALG | 4 |
| Final colloid | 4 |
| Size Distribution by Intensity (nm) | Size Distribution by Number (nm) | PDI | Zeta Potential (ξ) | LC% | EE% | |
|---|---|---|---|---|---|---|
| Blank nanoparticles | 688 ± 54 | 82 ± 15 | 0.53 ± 0.02 | 27.5 ± 2.2 | - | - |
| Chitosan–alginate nanoparticles loaded with insulin | 663 ± 33 | 101 ± 20 | 0.28 ± 0.02 | 41 ± 1.7 | 6.7 ± 0.3 | 30 ± 2.6 |
| pH | Model | Parameter | Value | R2 | Interpretation |
|---|---|---|---|---|---|
| 4.5 | Korsmeyer–Peppas | n | 0.2895 | 0.9907 | Fickian diffusion |
| 4.5 | Higuchi | kH | 7.8055 | 0.9953 | Diffusion-controlled release |
| 7.4 | Korsmeyer–Peppas | n | 0.4019 | 0.9725 | Fickian diffusion |
| 7.4 | Higuchi | kH | 3.4555 | 0.9413 | Diffusion with reduced linearity |
| System | Particle Size | EE% | Release Behavior | Biological Validation | Ref. |
|---|---|---|---|---|---|
| Chitosan and Arabic gum nanoparticles | 150–200 nm | 25–30 | Burst effect of insulin (30% to 50% release) in the initial 5 to 15 min at pH 1.2, sustained release profiles observed at pH 6.5 and 7.2. | In vitro | [39] |
| Chitosan nanoparticles | 318 nm | 99 | Initial rapid release of approximately 30% in 1 h (pH 2.5), sustained release profiles observed at pH 6.6 and 7.0. | In vitro | [1] |
| Alginate-dextran sulfate microspheres | 68–108 µm | 86–94 | Initial burst effect at pH 1.2, with nearly 80% released. | In vitro | [40] |
| Alginate-chitosan microspheres | 7.5 µm | 56 | 32% of insulin released during a simulated gastric transit time of 2 h. | In vitro and in vivo | [41] |
| Chitosan–alginate nanoparticles | 663 ± 33 nm by intensity distribution and 101 ± 20 nm by number distribution | 30 ± 2.6 | Insulin exhibited a rapid release at pH 4.5, reaching completion within 1 h, whereas a sustained release profile was observed at pH 7.4 (86.46% at 72 h). | In vitro | This work |
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Share and Cite
Reyes, R.; Ojeda-Martínez, M.L.; Hernández-Gordillo, A.; Ojeda-Martínez, M.; Sifuentes-Franco, S.; Cano, M.E.; Díaz-Zaragoza, M.; Velásquez-Ordóñez, C. Insulin Encapsulation in a Chitosan–Alginate Matrix and In Vitro Release. Bioengineering 2026, 13, 812. https://doi.org/10.3390/bioengineering13070812
Reyes R, Ojeda-Martínez ML, Hernández-Gordillo A, Ojeda-Martínez M, Sifuentes-Franco S, Cano ME, Díaz-Zaragoza M, Velásquez-Ordóñez C. Insulin Encapsulation in a Chitosan–Alginate Matrix and In Vitro Release. Bioengineering. 2026; 13(7):812. https://doi.org/10.3390/bioengineering13070812
Chicago/Turabian StyleReyes, Ruth, María Luisa Ojeda-Martínez, Armin Hernández-Gordillo, Miguel Ojeda-Martínez, Sonia Sifuentes-Franco, Mario E. Cano, Mariana Díaz-Zaragoza, and Celso Velásquez-Ordóñez. 2026. "Insulin Encapsulation in a Chitosan–Alginate Matrix and In Vitro Release" Bioengineering 13, no. 7: 812. https://doi.org/10.3390/bioengineering13070812
APA StyleReyes, R., Ojeda-Martínez, M. L., Hernández-Gordillo, A., Ojeda-Martínez, M., Sifuentes-Franco, S., Cano, M. E., Díaz-Zaragoza, M., & Velásquez-Ordóñez, C. (2026). Insulin Encapsulation in a Chitosan–Alginate Matrix and In Vitro Release. Bioengineering, 13(7), 812. https://doi.org/10.3390/bioengineering13070812

