Development of Sun Screen Gel Formulation from Secang Wood Extract (Caesalpinia sappan L.)
Keywords:
Caesalpinia sappanL., sappan wood, antioxidant, sunscreen gel, SPF, Carbopol.Abstract
Exposure to ultraviolet (UV) radiation can cause oxidative stress, premature aging, and even skin cancer, so it is necessary to develop sunscreens based on natural ingredients that are safe and effective. Secang wood (Caesalpinia sappan L.) is known to contain phenolic compounds and brazilin which have antioxidant activity and have the potential as photoprotective agents. This study aims to develop a sunscreen gel formulation from ethanol extract of secang wood and evaluate its antioxidant activity, Sun Protection Factor (SPF) value, physical characteristics, and stability. Extraction was carried out using the maceration method using 96% ethanol. Antioxidant activity was determined using the DPPH method, while sunscreen activity was analyzed in vitro using UV-Vis spectrophotometry with the Mansur method. The gel was formulated in four formulas with varying extract concentrations (0.85% and 1.7%) and Carbopol (0.75% and 1%). Evaluation of the preparation included organoleptic tests, homogeneity, pH, viscosity, syneresis, spreadability, adhesion, and accelerated stability. The results showed that the ethanol extract of sappanwood has strong antioxidant activity with an IC50 value of 58.503 µg/mL. The SPF values of the extract at concentrations of 500, 850, and 1000 ppm were 49.59; 46.64; and 45.86, respectively, which are included in the high protection category. The SPF value of the gel preparation ranged from 15.11 to 22.36, with formula F2 (0.85% extract and 1% Carbopol) producing the highest SPF value of 22.355 ± 0.085. All formulas met the physical quality requirements of topical preparations with a pH range of 4.59-4.91, viscosity of 122.8-283.7 P, spreadability of 4.40-5.38 cm, and adhesiveness of 4.3-4.6 seconds. The results of the study indicate that the ethanol extract of sappanwood has the potential to be developed as an active ingredient in natural sunscreen in the form of a stable, safe, and effective gel preparation.
References
Abdeltawab, H., Svirskis, D., & Sharma, M. (2020). Formulation strategies to modulate drug release from poloxamer based in situ gelling systems. Expert Opinion on Drug Delivery, 17(4), 495–509. https://doi.org/10.1080/17425247.2020.1731469
Alnuqaydan, A. M. (2024). The dark side of beauty: an in-depth analysis of the health hazards and toxicological impact of synthetic cosmetics and personal care products. Frontiers in Public Health, 12, 1439027. https://doi.org/10.3389/FPUBH.2024.1439027/FULL
Al-Sadek, T., & Yusuf, N. (2024). Ultraviolet Radiation Biological and Medical Implications. Current Issues in Molecular Biology 2024, Vol. 46, Pages 1924-1942, 46(3), 1924–1942. https://doi.org/10.3390/CIMB46030126
Ansarian, E., Aminzare, M., Hassanzad Azar, H., Mehrasbi, M. R., & Bimakr, M. (2022). Nanoemulsion-based basil seed gum edible film containing resveratrol and clove essential oil: In vitro antioxidant properties and its effect on oxidative stability and sensory characteristic of camel meat during refrigeration storage. Meat Science, 185, 108716. https://doi.org/10.1016/J.MEATSCI.2021.108716
Barnes, T. M., Mijaljica, D., Townley, J. P., Spada, F., & Harrison, I. P. (2021). Vehicles for Drug Delivery and Cosmetic Moisturizers: Review and Comparison. Pharmaceutics 2021, Vol. 13, Page 2012, 13(12), 2012. https://doi.org/10.3390/PHARMACEUTICS13122012
Bouteche, A., Touil, A., Akkal, S., Bensouici, C., & Nieto, G. (2024). Phenolic Constituents, Photoprotective Effect, and Antioxidant Capacities of Achillea ligustica All. Molecules, 29(17), 4112. https://doi.org/10.3390/MOLECULES29174112/S1
Budzianowska, A., Banaś, K., Budzianowski, J., & Kikowska, M. (2025). Antioxidants to Defend Healthy and Youthful Skin—Current Trends and Future Directions in Cosmetology. Applied Sciences 2025, Vol. 15, Page 2571, 15(5), 2571. https://doi.org/10.3390/APP15052571
Chen, J., Liu, Y., Zhao, Z., & Qiu, J. (2021). Oxidative stress in the skin: Impact and related protection. International Journal of Cosmetic Science, 43(5), 495–509. https://doi.org/10.1111/ICS.12728;SUBPAGE:STRING:FULL
Eryani, M. C., Pratama, S. Y., Falahi, A., Husni, P., & Wardhani, F. A. (2025). Formulation and physical evaluation of ethanol extract gel of Jackfruit leaves (Artocarpus heterophyllus Lam.) using Carbopol as a gelling agent. Farmasains : Jurnal Farmasi Dan Ilmu Kesehatan, 10(1), 14–22. https://doi.org/10.22219/farmasains.v10i1.40482
Fonseca, M., Rehman, M., Soares, R., & Fonte, P. (2023). The Impact of Flavonoid-Loaded Nanoparticles in the UV Protection and Safety Profile of Topical Sunscreens. Biomolecules 2023, Vol. 13, Page 493, 13(3), 493. https://doi.org/10.3390/BIOM13030493
Hafifah, F. N., Agustina, L. S., & Latifah, N. (2025). Review Formulasi Dan Evaluasi Stabilitas Fisik Sediaan Krim Berbahan Alam: Tinjauan Berbasis Berbagai Metode Uji (Cycling, Freeze-Thaw, Sentrifugasi). Sains Medisina, 3(5), 320–328. https://doi.org/10.63004/SNSMED.V3I5.738
Haykal, D., Lim, H. W., Calzavara-Pinton, P., Fluhr, J., Cartier, H., & Berardesca, E. (2025). The impact of pollution and climate change on skin health: Mechanisms, protective strategies, and future directions. JAAD Reviews, 6, 1–11. https://doi.org/10.1016/J.JDRV.2025.05.001
Henderson, S. I., King, K. L., Karipidis, K. K., Tinker, R. A., & Green, A. C. (2022). Effectiveness, compliance and application of sunscreen for solar ultraviolet radiation protection in Australia. Public Health Research and Practice, 32(1), 3212205. https://doi.org/10.17061/PHRP3212205/265343
Infante, V. H. P., Maia Campos, P. M. B. G., Calixto, L. S., Darvin, M. E., Kröger, M., Schanzer, S., Lohan, S. B., Lademann, J., & Meinke, M. C. (2021). Influence of physical–mechanical properties on SPF in sunscreen formulations on ex vivo and in vivo skin. International Journal of Pharmaceutics, 598, 120262. https://doi.org/10.1016/J.IJPHARM.2021.120262
Insuan, W., Sillawatthumrong, N., Chahomchuen, T., Khamchun, S., Chueahongthong, F., & Insuan, O. (2024). Brazilin content and potential biological properties of Caesalpinia sappan L. heartwood extracts from different extraction methods. Discover Applied Sciences 2024 6:10, 6(10), 509-. https://doi.org/10.1007/S42452-024-06222-4
kumar, D., Agrawal, S., Prajapati, M., Sahoo, S., & Sahoo, D. (2026). LC-MS/MS-based metabolite profiling and functional assessment of Hydrodictyon reticulatum as a potential source of natural therapeutics collected from the Yamuna River, India. Applied Food Research, 6(1), 102062. https://doi.org/10.1016/J.AFRES.2026.102062
Luo, Y., Liu, X. C., Li, Y. J., Wang, Y. J., Qiu, M. H., & Peng, X. R. (2025). Advances in natural products with anti-skin photoaging: mechanisms, phytochemical diversity, and therapeutic potential. Phytochemistry Reviews 2025 25:2, 25(2), 1503–1528. https://doi.org/10.1007/S11101-025-10170-1
Mensor, L. L., Menezes, F. S., Leitão, G. G., Reyes, A. S., dos Santos, T. C., Fit, C. S., & Leitão, S. G. (2001). Screening of Brazilian plant extracts for antioxidant activity by the use of DPPH free radical method. Phytotherapy Research, 15(2), 127–130. https://doi.org/10.1002/PTR.687;PAGE:STRING:ARTICLE/CHAPTER
Michalak, M. (2022). Plant-Derived Antioxidants: Significance in Skin Health and the Ageing Process. International Journal of Molecular Sciences 2022, Vol. 23, Page 585, 23(2), 585. https://doi.org/10.3390/IJMS23020585
Pahlevi, M. R., Maulida, I. H., Supriadi, D., & Pratama, R. (2026). Formulation of Moringa Leaf Ethanol Extract Gel (Moringa oleifera L.) Using Carbopol 940 as a Gelling Agent and Antioxidant Activity. Tropical Journal of Natural Product Research, 10(2), 7284. https://doi.org/10.26538/TJNPR/V10I2.36
Saryanti, D., Setiawan, I., & Dayanto, H. H. (2022). Use of CMC Na as Gelling Agent in Nanoemulgel Formulation of Methanol Extract of Sappan Wood (Caesalpinia sappan L). Journal of Tropical Pharmacy and Chemistry , 6(1), 21–29. https://doi.org/10.30872/J.TROP.PHARM.CHEM.V6I1.215
Shi, M., Wu, S., Xie, M., Xiong, R., Yang, A., & Huang, C. (2025). A biocompatible anti-aging gel mask prepared with sappanwood extract and sodium carboxymethyl cellulose, exhibiting antioxidant and antibacterial properties. International Journal of Biological Macromolecules, 322, 146588. https://doi.org/10.1016/J.IJBIOMAC.2025.146588
Solano, F. (2020). Photoprotection and Skin Pigmentation: Melanin-Related Molecules and Some Other New Agents Obtained from Natural Sources. Molecules 2020, Vol. 25, Page 1537, 25(7), 1537. https://doi.org/10.3390/MOLECULES25071537
Tarumiyo, A. A., Dewi, K. H., & Asben, A. (2025). The Effect of the Addition of Green Tea Extract on the Stability of Sappan Extract Due to Ultraviolet Radiation. AJARCDE (Asian Journal of Applied Research for Community Development and Empowerment), 9(2), 296–301. https://doi.org/10.29165/AJARCDE.V9I2.697
Vij, T., Anil, P. P., Shams, R., Dash, K. K., Kalsi, R., Pandey, V. K., Harsányi, E., Kovács, B., & Shaikh, A. M. (2023). A Comprehensive Review on Bioactive Compounds Found in Caesalpinia sappan. Molecules 2023, Vol. 28, Page 6247, 28(17), 6247. https://doi.org/10.3390/MOLECULES28176247
Wirawati, K. T., Ompusunggu, G. B., Wardani, L., & Yanti, K. R. D. (2023). The pharmacological potential of sappan wood (Caesalpinia sappan L.): A review of recent evidence. Pharmacy Reports, 3(3), 86–86. https://doi.org/10.51511/PR.86










