Expandable Ranitidine HCl tablets with Salak Bali seed matrix (Salacca zalacca)

Authors

  • I Gusti Ngurah Agung Dewantara Putra Universitas Udayana
  • I Gusti Nyoman Darmaputra Universitas Udayana
  • Imron Hadi Tamim Universitas Udayana

DOI:

https://doi.org/10.55324/ijoms.v4i2.1061

Keywords:

Salak Bali seed matrix, Ranitidine HCl, Inflatable Tablet

Abstract

This research aims to develop ranitidine HCl tablets that can be expanded with a matrix from Balinese salak seeds (Salacca zalacca) as a natural matrix material. This formulation is expected to prolong the release time of the drug in the body, thereby increasing the effectiveness of ranitidine therapy in the treatment of gastric diseases. The research method included the extraction of the active components from Balinese salak seeds and the process of making tablets using the wet granulation method, followed by physical tests of the tablets which included the hardness, crushing time, and ability of the tablets to expand. The results showed that ranitidine HCl tablets with Balinese salak seed matrix had physical characteristics that met the requirements of pharmacopooeia, with a slower drug release time than tablets without a developer matrix. Analysis of development capabilities shows that Balinese salak seeds are effective as natural matrix agents to prolong the release time of ranitidine HCl. In conclusion, Balinese salak seed matrix can be used as an alternative in the development of expandable ranitidine HCl tablets, potentially increasing the therapeutic effect of the drug.

References

Al-Enizi, A. M., Zagho, M. M., & Elzatahry, A. A. (2018). Polymer-based electrospun nanofibers for biomedical applications. Nanomaterials, 8(4). https://doi.org/10.3390/nano8040259

Ali, F., Nandi, U., Trivedi, M., Prakash, A., Dahiya, M., Sahu, P. L., Kumar, R., & Singh, G. N. (2018). Quantitative characterization and pharmaceutical compatibility between teneligliptin and widely used excipients by using thermal and liquid chromatography tandem mass spectrometry techniques. Journal of Thermal Analysis and Calorimetry, 132(1), 385–396. https://doi.org/10.1007/s10973-018-6962-z

Asrofi, M., Abral, H., Putra, Y. K., Sapuan, S. M., & Kim, H. J. (2018). Effect of duration of sonication during gelatinization on properties of tapioca starch water hyacinth fiber biocomposite. International Journal of Biological Macromolecules, 108, 167–176. https://doi.org/10.1016/j.ijbiomac.2017.11.165

Currie, L. A. (1968). Limits for Qualitative Detection and Quantitative Determination: Application to Radiochemistry. Analytical Chemistry, 40(3). https://doi.org/10.1021/ac60259a007

D’Souza, S. (2014). A Review of In Vitro Drug Release Test Methods for Nano-Sized Dosage Forms . Advances in Pharmaceutics, 2014. https://doi.org/10.1155/2014/304757

Evard, H., Kruve, A., & Leito, I. (2016). Tutorial on estimating the limit of detection using LC-MS analysis, part I: Theoretical review. Analytica Chimica Acta, 942. https://doi.org/10.1016/j.aca.2016.08.043

Ge, M., Li, Y., Zhu, C., Liang, G., Jahangir Alam, S. M., Hu, G., Gui, Y., & Junaebur Rashid, M. (2021). Preparation of organic-modified magadiite–magnetic nanocomposite particles as an effective nanohybrid drug carrier material for cancer treatment and its properties of sustained release mechanism by Korsmeyer–Peppas kinetic model. Journal of Materials Science, 56(25). https://doi.org/10.1007/s10853-021-06181-w

Harmita, H. (2004). PETUNJUK PELAKSANAAN VALIDASI METODE DAN CARA PERHITUNGANNYA. Majalah Ilmu Kefarmasian, 1(3). https://doi.org/10.7454/psr.v1i3.3375

Khattab, A., & Zaki, N. (2017). Optimization and Evaluation of Gastroretentive Ranitidine HCl Microspheres by Using Factorial Design with Improved Bioavailability and Mucosal Integrity in Ulcer Model. AAPS PharmSciTech, 18(4), 957–973. https://doi.org/10.1208/s12249-017-0744-y

Klymus, K. E., Merkes, C. M., Allison, M. J., Goldberg, C. S., Helbing, C. C., Hunter, M. E., Jackson, C. A., Lance, R. F., Mangan, A. M., Monroe, E. M., Piaggio, A. J., Stokdyk, J. P., Wilson, C. C., & Richter, C. A. (2020). Reporting the limits of detection and quantification for environmental DNA assays. Environmental DNA, 2(3). https://doi.org/10.1002/edn3.29

Maderuelo, C., Zarzuelo, A., & Lanao, J. M. (2011). Critical factors in the release of drugs from sustained release hydrophilic matrices. Journal of Controlled Release, 154(1). https://doi.org/10.1016/j.jconrel.2011.04.002

Mahdi, H. I., Irawan, E., Nuryoto, N., Jayanudin, J., Sulistyo, H., Sediawan, W. B., & Muraza, O. (2016). Glycerol Carbonate Production from Biodiesel Waste Over Modified Natural Clinoptilolite. Waste and Biomass Valorization, 7(6). https://doi.org/10.1007/s12649-016-9495-3

Makuasa, D. A. A., & Ningsih, P. (2020). The Analysis of Total Flavonoid Levels In Young Leaves and Old Soursop Leaves (Annona muricata L.) Using UV-Vis Sepctrofotometry Methods. Journal of Applied Science, Engineering, Technology, and Education, 2(1). https://doi.org/10.35877/454ri.asci2133

Mohammad Yusif, R., Ibrahim Abu Hashim, I., Abdelmonem Mohamed, E., & Magdy El Rakhawy, M. (2016). Investigation and Evaluation of an in Situ Interpolymer Complex of Carbopol with Polyvinylpyrrolidone as a Matrix for Gastroretentive Tablets of Ranitidine Hydrochloride. In Chem. Pharm. Bull (Vol. 64, Issue 1).

Nugroho, A. K., Pratiwi, P. D., Citrariana, S., Lukitaningsih, E., & Hakim, L. (2021). Population pharmacokinetics modeling of levofloxacin in rabbit after intravenous bolus injection and peroral administration. Indonesian Journal of Pharmacy, 32(3). https://doi.org/10.22146/ijp.1073

Nurlinda, N., Handayani, V., & Rasyid, F. A. (2021). Spectrophotometric Determination of Total Flavonoid Content in Biancaea Sappan (Caesalpinia sappan L.) Leaves. Jurnal Fitofarmaka Indonesia, 8(3). https://doi.org/10.33096/jffi.v8i3.712

Solikah, W. Y., Fatmawati, A., Gunawan, A., & Defri, A. Y. (2023). Uji Kualitatif Dan Penetapan Kadar Flavonoid Total Ekstrak Etanol Herba Pegagan (Centella asiatica) Dengan Variasi Konsentrasi Pelarut. Journal of Pharmaceutical and Sciences, 6(2). https://doi.org/10.36490/journal-jps.com.v6i2.89

Sreeja, P. S., Arunachalam, K., Saikumar, S., Kasipandi, M., Dhivya, S., Murugan, R., & Parimelazhagan, T. (2018). Gastroprotective effect and mode of action of methanol extract of Sphenodesme involucrata var. paniculata (C.B. Clarke) Munir (Lamiaceae) leaves on experimental gastric ulcer models. Biomedicine and Pharmacotherapy, 97, 1109–1118. https://doi.org/10.1016/j.biopha.2017.11.030

Sugiura, F., Ito, S., & Arai, E. (2017). Effect of pregelatinized starch paste on the ease of swallowing high-moisture content bread. Journal of Food Engineering, 214, 209–217. https://doi.org/10.1016/j.jfoodeng.2017.06.021

Suharyanto, S., & Hayati, T. N. (2021). Penetapan Kadar Flavonoid Total Ekstrak Buah Gambas (Luffa acutangula(L.) Roxb.) dengan Metode Spektrofotometri UV-Vis. Pharmacon: Jurnal Farmasi Indonesia, 18(1). https://doi.org/10.23917/pharmacon.v18i01.10916

Uddin, M., Rathi, P. B., Siddiqui, A. R., Sonawane, A. R., & Gadade, D. D. (2011). Recent Development in Floating Delivery Systems for Gastric Retention of Drugs An Overview. In Asian Journal of Biomedical and Pharmaceutical Sciences (Vol. 1, Issue 3). www.jbiopharm.com

Yin, J., Wang, W., Xu, X., Li, H., Cong, M., Zhao, X., & Wang, C. (2018). Preparation, characterization and pharmacokinetics of extended-release tablets of marine polysaccharide drug. Journal of Drug Delivery Science and Technology, 43, 353–361. https://doi.org/10.1016/j.jddst.2017.10.024

Zhang, Y., Huo, M., Zhou, J., Zou, A., Li, W., Yao, C., & Xie, S. (2010). DDSolver: An add-in program for modeling and comparison of drug dissolution profiles. AAPS Journal, 12(3). https://doi.org/10.1208/s12248-010-9185-1

Zuo, Y. G., Liu, B. G., Zhang, L. B., Peng, J. H., Ma, A. Y., & Wang, B. B. (2014). Optimization on drying of ilmenite by microwave heating using response surface methodology. TMS Annual Meeting. https://doi.org/10.1002/9781118887998.ch79

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Published

2024-11-30