Bioinspired Cross-Linked Anionic Hydrogel Microparticles as Potential Adjuvants for Safe Vaccines: Colloidal-Chemical Characteristics, Morphology and Biological Properties
Abstract
1. Introduction
2. Results and Discussion
2.1. Structural and Colloidal-Chemical Characteristics of HG5 and HG5-BSA Complex
2.2. Study of HG5 Cytotoxicity
2.3. HG5 Effect on DNA Stability and Apoptosis in HEK293 Cells
2.4. Hemolytic Activity
2.5. Immunological Studies of HG5
3. Conclusions
4. Materials and Methods
4.1. Materials
4.2. Synthesis
4.2.1. Hydrogel Microparticles Synthesis
4.2.2. Formation of Aqueous Dispersions
- Preparation of HG5 dispersion. HG5 microparticles (0.4 g) were added to 9.0 mL of phosphate-buffered saline (PBS, pH 7.4) and stirred for 10 min to obtain a uniform dispersion. After dispersion, the system pH was approximately 3.0. The pH was adjusted to 7.4 by dropwise addition of 5 N NaOH under continuous stirring. The final volume was adjusted to 10 mL with PBS, if necessary. The dispersion was subsequently sonicated for 10 s.
- Preparation of HG5–BSA complexes. HG5 microparticles (0.4 g) were dispersed in 5.0 mL of PBS. Separately, BSA (0.1 g) was dissolved in 4.0 mL of PBS. The BSA solution was added to the HG5 dispersion under constant stirring to allow complex formation. The pH was adjusted to 7.4 as described above. PBS was added to a final volume of 10 mL. The resulting dispersion was sonicated for 10 s.
- HG5-BSA complex formation for stability studies. To evaluate antigen loading [61], HG5–BSA complexes were prepared by mixing equal volumes of 50 µg/mL HG5 and 25 µg/mL bovine serum albumin (BSA; “Sigma-Aldrich”, St. Louis, MO, USA) to a final volume of 2 mL. The mixture was incubated for 60–90 min at room temperature (RT) on an orbital shaker (120 rpm).
4.3. Product Characterization
4.3.1. Hydrogel Microparticles
4.3.2. Swelling Analysis of HG5 Hydrogel
4.3.3. Efficiency of BSA Loading
4.3.4. Dynamic Light Scattering (DLS)
4.3.5. Small-Angle X-Ray Scattering (SAXS)
4.3.6. SDS-PAGE Electrophoresis and Coomassie Brilliant Blue Staining
4.3.7. Refractive Index Analysis
4.3.8. Measurement of Stability of HG5-BSA Complex
4.3.9. Storage Stability Assessment of HG5–BSA Complexes
4.4. Biological Evaluation
4.4.1. Hemolytic Activity
4.4.2. Immunological Evaluation
4.4.3. Cell Culture
4.4.4. MTT Assay
4.4.5. Cell Colony-Forming Assay
4.4.6. Fluorescence Microscopy of Cells
4.4.7. Diphenylamine Assay of DNA Fragmentation
4.4.8. Alkaline Comet Assay
4.4.9. Statistical Analysis
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Sample | Composition of Hydrogel Copolymer Particles, % mol | BSA Content in the Complex, g/100 g HG5 | Dh, nm | Z-Potential, mV | |||
|---|---|---|---|---|---|---|---|
| AA Unit | GMA Unit | BA Unit | TGDMA Unit | ||||
| HG5 | 78 | 7 | 4 | 11 | - | 250 ± 50 | −15.0 ± 2.5 |
| Complex HG5-BSA | 95 | 250 ± 55 | −7.0 ± 1.2 | ||||
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Ceylan, S.E.; Mitina, N.; Finiuk, N.; Bulkurcuoglu, B.; San, S.; Mazi, A.R.; Kozak, M.; Izhyk, O.; Petruh, I.; Garamus, V.M.; et al. Bioinspired Cross-Linked Anionic Hydrogel Microparticles as Potential Adjuvants for Safe Vaccines: Colloidal-Chemical Characteristics, Morphology and Biological Properties. Gels 2026, 12, 677. https://doi.org/10.3390/gels12080677
Ceylan SE, Mitina N, Finiuk N, Bulkurcuoglu B, San S, Mazi AR, Kozak M, Izhyk O, Petruh I, Garamus VM, et al. Bioinspired Cross-Linked Anionic Hydrogel Microparticles as Potential Adjuvants for Safe Vaccines: Colloidal-Chemical Characteristics, Morphology and Biological Properties. Gels. 2026; 12(8):677. https://doi.org/10.3390/gels12080677
Chicago/Turabian StyleCeylan, Sebnem Ercelen, Nataliya Mitina, Nataliya Finiuk, Bunyamin Bulkurcuoglu, Saygin San, Aise Rumeysa Mazi, Mariya Kozak, Oleh Izhyk, Iryna Petruh, Vasil M. Garamus, and et al. 2026. "Bioinspired Cross-Linked Anionic Hydrogel Microparticles as Potential Adjuvants for Safe Vaccines: Colloidal-Chemical Characteristics, Morphology and Biological Properties" Gels 12, no. 8: 677. https://doi.org/10.3390/gels12080677
APA StyleCeylan, S. E., Mitina, N., Finiuk, N., Bulkurcuoglu, B., San, S., Mazi, A. R., Kozak, M., Izhyk, O., Petruh, I., Garamus, V. M., Harhay, K., Nebesnyi, R., Stoika, R., & Zaichenko, A. (2026). Bioinspired Cross-Linked Anionic Hydrogel Microparticles as Potential Adjuvants for Safe Vaccines: Colloidal-Chemical Characteristics, Morphology and Biological Properties. Gels, 12(8), 677. https://doi.org/10.3390/gels12080677

