Submitted:
27 June 2026
Posted:
29 June 2026
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Abstract

Keywords:
1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Methods
2.2.1. Initial Characterization
Preparation of SNEDDS
| Formulation | Peppermint oil (mg) | Tween 80 (mg) | Cremophor RH 40® (mg) | Ibuprofen (mg) |
|---|---|---|---|---|
| F1 | 518.46 | 518.46 | 518.46 | 444.44 |
| F2 | 444.42 | 666.70 | 444.42 | 444.44 |
| F3 | 388.88 | 583.33 | 583.33 | 444.44 |
| F4 | 345.64 | 864.25 | 345.64 | 444.44 |
| F5 | 259.31 | 648.19 | 648.19 | 444.44 |
| F6 | 478.64 | 598.26 | 478.64 | 444.44 |
| F7 | 444.42 | 555.48 | 555.48 | 444.44 |
| F8 | 311.11 | 777.77 | 466.66 | 444.44 |
Self-Emulsification Efficiency
2.2.2. Box-Behnken Experimental Design
Characterization of BBD-SNEDDS
- Cloud point
- Robustness to dilution
- Self-emulsification time
- Droplet size, PDI and Zeta potential
Surface Response Analysis of BBD-SNEDDS
Formulation, Validation, and Point Prediction of Optimized IBU- SNEDDS
2.2.3. Evaluation of Optimized IBU-SNEDDS
Effect of pH on Droplet Size
Effect of Dilution on Droplet Size
Physical/Kinetic Stability
3. Results and Discussion
3.1. Initial Characterization
Self-Emulsification Efficiency
3.2. Box-Behnken Experimental Design
3.2.1. Characterization of BBD-SNEDDS
Cloud Point
Robustness to Dilution
Self-Emulsification Time
Droplet Size, PDI and Zeta Potential
3.2.2. Surface Response Analysis of BBD-SNEDDS
3.2.3. Formulation, Validation and Point Prediction of SNEDDS
3.3. Evaluation of Optimized Formulation
3.3.1. Cloud Point
3.3.2. Self-Emulsification Time
3.3.4. Droplet Size
3.3.5. PDI
3.3.6. Zeta Potential
3.3.7. Effect of Dilution on Droplet Size
3.3.8. Effect of pH on Droplet Size
3.3.9. Physical/Kinetic Stability and Stress Testing
4. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Abbreviations
| CQA | Critical quality attributes |
| DoE | Design of Experiments. |
| DLS | Dynamic Light Scattering. |
| QbD | Quality by Design. |
| SNEDDS | Self-Nanoemulsifying Drug Delivery Systems. |
| BBD | Box-Behnken design. |
References
- Alqahtani, M.S.; Kazi, M.; Alsenaidy, M.A.; Ahmad, M.Z. Advances in Oral Drug Delivery. Front Pharmacol. 2021, 12. [Google Scholar] [CrossRef] [PubMed]
- Zaslavsky, J.; Allen, C. A dataset of formulation compositions for self-emulsifying drug delivery systems. Sci. Data 2023, 10(1), 1. [Google Scholar] [CrossRef] [PubMed]
- Kalepu, S.; Nekkanti, V. Insoluble drug delivery strategies: review of recent advances and business prospects. Acta Pharm. Sin. B 2015, 5(5), 442–53. [Google Scholar] [CrossRef] [PubMed]
- Khan, K.U.; Minhas, M.U.; Badshah, S.F.; Suhail, M.; Ahmad, A.; Ijaz, S. Overview of nanoparticulate strategies for solubility enhancement of poorly soluble drugs. Life Sci. 2022, 291, 120301. [Google Scholar] [CrossRef] [PubMed]
- Mihaylov, V.; Tosheva, M.; Petrov, V.; Titeva, S. Technological approaches to increase the bioavailability of Ibuprofen. PHARMACIA 2025, 72, 1–11. [Google Scholar] [CrossRef]
- Ćirić, A.; Medarević, Đ.; Čalija, B.; Dobričić, V.; Rmandić, M.; Barudžija, T.; et al. Effect of ibuprofen entrapment procedure on physicochemical and controlled drug release performances of chitosan/xanthan gum polyelectrolyte complexes. Int. J. Biol. Macromol. 2021, 167, 547–58. [Google Scholar] [CrossRef] [PubMed]
- Irvine, J.; Afrose, A.; Islam, N. Formulation and delivery strategies of ibuprofen: challenges and opportunities [Internet]. 2017. Available online: https://www.tandfonline.com/doi/full/10.1080/03639045.2017.1391838.
- Yahaya, Z.S.; Kurfi, F.S.; Mallam, D.; Oloyede, R.B.; Adeleye, O.A.; Okpanachi, G.O. Preliminary research on ibuprofen self-emulsifying formulation. J. Res. Pharm. 2022, 26(4). [Google Scholar] [CrossRef]
- Nardin, I.; Köllner, S. Successful development of oral SEDDS: screening of excipients from the industrial point of view. Adv. Drug Deliv. Rev.;Self-Emuls. Drug Deliv. Syst. (SEDDS) 2019, 142, 128–40. [Google Scholar] [CrossRef] [PubMed]
- Zafar, A.; Yasir, M.; Alruwaili, N.K.; Imam, S.S.; Alsaidan, O.A.; Alshehri, S.; et al. Formulation of Self-Nanoemulsifying Drug Delivery System of Cephalexin: Physiochemical Characterization and Antibacterial Evaluation. Polymers 2022, 14(5), 5. [Google Scholar] [CrossRef] [PubMed]
- Krstić, M.; Medarević, Đ.; Đuriš, J.; Ibrić, S. Chapter 12 - Self-nanoemulsifying drug delivery systems (SNEDDS) and self-microemulsifying drug delivery systems (SMEDDS) as lipid nanocarriers for improving dissolution rate and bioavailability of poorly soluble drugs. In Lipid Nanocarriers for Drug Targeting [Internet]; Grumezescu, A.M., Ed.; William Andrew Publishing, 2018 [cited 2025 Jun 19; pp. 473–508. Available online: https://www.sciencedirect.com/science/article/pii/B9780128136874000128. [CrossRef]
- Vasconcelos, T.; Marques, S.; Sarmento, B. Measuring the emulsification dynamics and stability of self-emulsifying drug delivery systems. Eur. J. Pharm. Biopharm. Off. J. Arbeitsgemeinschaft Pharm. Verfahrenstechnik EV 2018, 123, 1–8. [Google Scholar] [CrossRef] [PubMed]
- Valicherla, G.R.; Dave, K.M.; Syed, A.A.; Riyazuddin, M.; Gupta, A.P.; Singh, A.; et al. Formulation optimization of Docetaxel loaded self-emulsifying drug delivery system to enhance bioavailability and anti-tumor activity. Sci. Rep. 2016, 6(1), 26895. [Google Scholar] [CrossRef] [PubMed]
- Sotomayor Pino, R.G.; Salas Ospino, S.C.; Ramirez Castillo, L.; Ospina Garcia, D. Diseño y desarrollo de un sistema de entrega de fármaco autoemulsificable (SEDDS) de ibuprofeno en cápsula dura de gelatina. RESCIFAR Rev. Esp. Cienc. Farm. 2021, 2(2), 251–2. [Google Scholar]
- Lopez, A.; Herazo, K.; Sotomayor, R.G. Diseño y desarrollo de un sistema de entrega de fármaco autoemulsificable líquido de ibuprofeno incorporado por el método de adsorción por portador en una forma farmacéutica sólida (comprimidos). Rev. Colomb. Cienc. Quím.-Farm 2019, 48(3). [Google Scholar] [CrossRef]
- Inactive Ingredient Search for Approved Drug Products [Internet]. 3 Jun 2026. Available online: https://www.accessdata.fda.gov/scripts/cder/iig/index.cfm?event=BasicSearch.page.
- Excipients labelling | European Medicines Agency (EMA) [Internet]. 2016. Available online: https://www.ema.europa.eu/en/human-regulatory-overview/marketing-authorisation/product-information-requirements/excipients-labelling.
- Sindi, A.M.; Hosny, K.M.; Alharbi, W.S. Lyophilized Composite Loaded with Meloxicam-Peppermint oil Nanoemulsion for Periodontal Pain. Polymers 2021, 13(14), 2317. [Google Scholar] [CrossRef] [PubMed] [PubMed Central]
- Silberstein, S.; Spierings, E.L.H.; Kunkel, T. Celecoxib Oral Solution and the Benefits of Self-Microemulsifying Drug Delivery Systems (SMEDDS) Technology: A Narrative Review. Pain Ther. 2023, 12(5), 1109–19. [Google Scholar] [CrossRef] [PubMed]
- Usta, D.Y.; Timur, B.; Teksin, Z.S. Formulation development, optimization by Box-Behnken design, characterization, in vitro, ex-vivo, and in vivo evaluation of bosentan-loaded self-nanoemulsifying drug delivery system: A novel alternative dosage form for pulmonary arterial hypertension treatment. Eur. J. Pharm. Sci. 2022, 174, 106159. [Google Scholar] [CrossRef] [PubMed]
- Ali, N.; Ahmed, G.; Hassan, G.; Elsayed, A.; Mamdouh, G. Effect of oils, surfactants and cosurfactants on phase behavior and physicochemical properties of self-nanoemulsifying drug delivery system (Snedds) for irbesartan and olmesartan. Int. J. Appl. Pharm. 2016, 8(1), 13–24. [Google Scholar]
- Rehman, F.U.; Farid, A.; Shah, S.U.; Dar, M.J.; Rehman, A.U.; Ahmed, N.; et al. Self-Emulsifying Drug Delivery Systems (SEDDS): Measuring Energy Dynamics to Determine Thermodynamic and Kinetic Stability. In Pharmaceuticals; PubMed Central, 26 Aug 2022; Volume 15, 9. [Google Scholar] [CrossRef] [PubMed] [PubMed Central]
- Buya, A.B.; Beloqui, A.; Memvanga, P.B.; Préat, V. Self-Nano-Emulsifying Drug-Delivery Systems: From the Development to the Current Applications and Challenges in Oral Drug Delivery. Pharmaceutics 2020, 12(12), 12. [Google Scholar] [CrossRef] [PubMed]
- Goméz Palencia, K.; Goméz de la Cruz, L.; Herrera Marquéz, A.; Sotomayor, R.G.; Goméz Palencia, K.; Goméz de la Cruz, L.; et al. Diseño y caracterización de un sistema de entrega de fármacos autoemulsificable (SEDDS) de estradiol por diagramas de fases pseudoternarios y pruebas fisicoquímicas. Rev. Colomb. Cienc. Quím.-Farm 2022, 51(1), 493–525. [Google Scholar] [CrossRef]
- Jakab, G.; Fülöp, V.; Bozó, T.; Balogh, E.; Kellermayer, M.; Antal, I. Optimization of Quality Attributes and Atomic Force Microscopy Imaging of Reconstituted Nanodroplets in Baicalin Loaded Self-Nanoemulsifying Formulations. Pharmaceutics 2018, 10(4). [Google Scholar] [CrossRef] [PubMed]
- Pawar, A.; Dere, S.; Pandhare, R.; Mohite, P.; Alharbi, H.M.; Subramaniyan, V.; et al. Enhancing solubility and dissolution of felodipine using self-nanoemulsifying drug systems through in vitro evaluation. Sci. Rep. 2025, 15(1), 1. [Google Scholar] [CrossRef] [PubMed]
- Mohite, P.; Sule, S.; Pawar, A.; Alharbi, H.M.; Maitra, S.; Subramaniyan, V.; et al. Development and characterization of a self-nano emulsifying drug delivery system (SNEDDS) for Ornidazole to improve solubility and oral bioavailability of BCS class II drugs. Sci. Rep. 2024, 14(1), 1. [Google Scholar] [CrossRef] [PubMed]
- Jahan, R.N.; Khan, Z.; Akhtar, M.S.; Ansari, M.D.; Solanki, P.; Ahmad, F.J.; et al. Development of Bedaquiline-Loaded SNEDDS Using Quality by Design (QbD) Approach to Improve Biopharmaceutical Attributes for the Management of Multidrug-Resistant Tuberculosis (MDR-TB). Antibiotics 2023, 12(10), 10. [Google Scholar] [CrossRef] [PubMed]
- Penjuri, S.C.B.; Damineni, S.; Ravouru, N.; Poreddy, S.R. Self-emulsifying drug delivery system (SEDDS) of Ibuprofen: formulation, in vitro and in vivo evaluation. ČEs Slov. Farm 2017, 66(1), 23–34. [Google Scholar] [CrossRef]
- Viljoen, J.M.; Cilliers, L.; Plessis, L.H.; du. Developing Self-Nanoemulsifying Drug Delivery Systems Comprising an Artemether–Lumefantrine Fixed-Dose Combination to Treat Malaria. Front Biosci.-Elite 2024, 16(3), 3. [Google Scholar] [CrossRef] [PubMed]
- Syukri, Y.; Fitriani, H.; Pandapotan, H.; Nugroho, B.H. Formulation, Characterization and Stability of Ibuprofen-Loaded Self-Nano Emulsifying Drug Delivery System (SNEDDS). Indones. J. Pharm. 2019, 30(2), 105. [Google Scholar] [CrossRef]
- Shahba, A.A.W.; Sherif, A.Y.; Elzayat, E.M.; Kazi, M. Combined Ramipril and Black Seed Oil Dosage Forms Using Bioactive Self-Nanoemulsifying Drug Delivery Systems (BIO-SNEDDSs). Pharmaceuticals 2022, 15(9), 9. [Google Scholar] [CrossRef] [PubMed]
- Derryberry, D.; Aho, K.; Edwards, J.; Peterson, T. Model Selection and Regression t-Statistics. Am. Stat. 2018, 72(4), 379–81. [Google Scholar] [CrossRef]
- Hsieh, C.M.; Yang, T.L.; Putri, A.D.; Chen, C.T. Application of Design of Experiments in the Development of Self-Microemulsifying Drug Delivery Systems. Pharmaceuticals 2023, 16(2), 2. [Google Scholar] [CrossRef] [PubMed]
- Jha, D.; Sindhu, K.; Kumar, A.; Utwaliya, G.K.; Ranjan, H.; Kumari, N.; et al. Optimization of Advance Novel Oral Self-Emulsifying Drug Delivery System (SEDDs) Involving Box-Behnken Design as Statistical Analysis Approach of Nateglinide Drug. J. Neonatal Surg. 2025, 14(23). [Google Scholar]
- Balata, G.F.; Essa, E.A.; Shamardl, H.A.; Zaidan, S.H.; Abourehab, M.A. Self-emulsifying drug delivery systems as a tool to improve solubility and bioavailability of resveratrol. Drug Des. Devel Ther. 2016, 10, 117–28. [Google Scholar] [CrossRef] [PubMed]
- Cueto, Y.L.; Ortega, W.L.; Sotomayor, R.G.; Cueto, Y.L.; Ortega, W.L.; Sotomayor, R.G. Sistemas de entrega de fármacos autoemulsificables: una plataforma de desarrollo alternativa para la industria farmacéutica colombiana. Rev. Colomb. Cienc. Quím.-Farm 2019, 48(2), 260–313. [Google Scholar] [CrossRef]
- Ezike, T.C.; Okpala, U.S.; Onoja, U.L.; Nwike, C.P.; Ezeako, E.C.; Okpara, O.J.; et al. Advances in drug delivery systems, challenges and future directions. In Heliyon; PubMed Central, Jun 2023; Volume 9, 6, p. e17488. [Google Scholar] [CrossRef] [PubMed] [PubMed Central]
- Meirinho, S.; Rodrigues, M.; Santos, A.O.; Falcão, A.; Alves, G. Self-Emulsifying Drug Delivery Systems: An Alternative Approach to Improve Brain Bioavailability of Poorly Water-Soluble Drugs through Intranasal Administration. In Pharmaceutics; PubMed Central, 18 Jul 2022; Volume 14, 7. [Google Scholar] [CrossRef] [PubMed] [PubMed Central]










| Independent variables | Levels | ||
|---|---|---|---|
| Low (-1) | Medium (0) | High (+1) | |
| A: Peppermint oil (%w/w) | 13.0 | 19.5 | 26.0 |
| B: Polysorbate 80 (% w/w) | 26.0 | 29.5 | 33.0 |
| C: PEG-40 Hydrogenated Castor Oil (%w/w) | 22.0 | 27.0 | 32.0 |
| Dependent variables | Goals | ||
| Y1: Cloud point (°C) | Maximize | ||
| Y2: Robustness to dilution | Maximize | ||
| Y3: Self-emulsification time (sec) | Minimize | ||
| Y4: Zeta potential (mV) | Minimize | ||
| Y5: Droplet size (nm) | Minimize | ||
| Y6: PDI (%) | Minimize | ||
| Formulation | A | B | C | Cloud point (°C) |
Robustness to dilution | Self-emulsification time (sec) | Zeta potential (mV) | Droplet size (nm) | PDI |
|---|---|---|---|---|---|---|---|---|---|
| 1 | 0 | 1 | 1 | 60 | 9 | 61.193 | -15.1 | 232.10 | 0.260 |
| 2 | 0 | -1 | -1 | 64 | 8 | 42.877 | -13.7 | 231.10 | 0.300 |
| 3 | -1 | 0 | 1 | 60 | 6 | 45.303 | -16.9 | 260.60 | 0.289 |
| 4 | 0 | 0 | 0 | 62 | 8 | 53.447 | -16.8 | 294.40 | 0.256 |
| 5 | 1 | 0 | 1 | 65 | 10 | 64.990 | -13.7 | 212.80 | 0.217 |
| 6 | -1 | 1 | 0 | 60 | 6 | 51.187 | -15.6 | 303.30 | 0.290 |
| 7 | -1 | 0 | -1 | 60 | 7 | 58.610 | -17.0 | 231.90 | 0.250 |
| 8 | 1 | 0 | -1 | 56 | 9 | 64.213 | -13.9 | 163.56 | 0.256 |
| 9 | 0 | 0 | 0 | 65 | 7 | 54.027 | -15.7 | 207.30 | 0.250 |
| 10 | 1 | 1 | 0 | 65 | 10 | 58.767 | -14.0 | 176.17 | 0.325 |
| 11 | 1 | -1 | 0 | 57 | 7 | 60.427 | -15.8 | 127.20 | 0.284 |
| 12 | 0 | 1 | -1 | 60 | 10 | 38.863 | -14.7 | 215.50 | 0.274 |
| 13 | -1 | -1 | 0 | 60 | 6 | 51.047 | -14.4 | 271.40 | 0.290 |
| 14 | 0 | -1 | 1 | 61 | 7 | 40.260 | -15.2 | 548.50 | 0.255 |
| 15 | 0 | 0 | 0 | 62 | 8 | 53.833 | -14.6 | 245.10 | 0.281 |
| Independent variable | Suggested model | p (model) | p (Lack-of-fit) | Adjusted R² | Predicted R² |
|---|---|---|---|---|---|
| Cloud Point | Mean | < 0.0001 | — | — | — |
| Robustness to dilution | Lineal | 0.0018 | 0.3246 | 0.6583 | 0.4513 |
| Self-emulsification time | Quadratic | 0.1248 | 0.0014 | 0.4864 | -1.9326 |
| Zeta potential | Lineal | 0.2405 | 0.6143 | 0.1177 | -0.3021 |
| Particle size | Lineal | 0.1463 | 0.1974 | 0.2037 | -0.3102 |
| PDI | Quadratic | 0.1516 | 0.2968 | 0.2537 | -2.4978 |
| Source | Sum of Squares | df | Mean Square | F-value | p-value |
|---|---|---|---|---|---|
| Model | 21.75 | 3 | 7.25 | 9.99 | 0.0018 |
| A-Peppermint oil | 15.13 | 1 | 15.13 | 20.84 | 0.0008 |
| B- Tween80 | 6.13 | 1 | 6.13 | 8.44 | 0.0143 |
| C- Cremophor RH 40 | 0.5000 | 1 | 0.5000 | 0.6889 | 0.4242 |
| Residual | 7.98 | 11 | 0.7258 | — | — |
| Lack of Fit | 7.32 | 9 | 0.8130 | 2.44 | 0.3246 |
| Pure Error | 0.6667 | 2 | 0.3333 | — | — |
| Cor Total | 29.73 | 14 | — | — | — |
| Equation | AND2= 7.87 + 1.38A + 0.875B - 0.25C | ||||
| % oil | % surfactant | % co-surfactant | Predicted Mean | Observed Mean | Std Dev | n | SE Pred | 95% PI Low | 95% PI High |
|---|---|---|---|---|---|---|---|---|---|
| 25.78% | 32.90% | 25.19% | 10.14 | 12 | 0.852 | 3 | 0.68736 | 8.9012 | 12 |
| Media | SD | RSD (%) | |
|---|---|---|---|
| 1 | 97.674 | 1.550 | 1.587 |
| 2 | 96.506 | 2.642 | 2.738 |
| 3 | 97.200 | 1.617 | 1.664 |
| ANOVA analysis | |||
| Source of Variation | df | F | P-value |
| Batch | 2 | 0.661 | 0.542 |
| Time | 4 | 2.595 | 0.117 |
| Error | 8 | – | – |
| Total | 14 | ||
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