Evaluasi Sistem Penghantaran Obat Transdermal Berbasis Microneedle: Tinjauan Karakterisasi, Farmakokinetik, Efikasi, Stabilitas, Dan Keamanan
DOI:
https://doi.org/10.63004/hrji.v4i5.1715Kata Kunci:
microneedle, transdermal, karakterisasi, farmakokinetik, evaluasi keamananAbstrak
Pendahuluan: Microneedle merupakan sistem penghantaran obat transdermal inovatif yang menggunakan jarum berukuran mikro (150–1500 µm) untuk menembus stratum corneum secara minimal invasif. Meskipun teknologi ini telah berkembang sejak akhir 1990-an, panduan terintegrasi mengenai parameter evaluasi yang harus dilakukan dalam pengembangan microneedle masih terbatas, sehingga menyulitkan standardisasi metode dan komparasi hasil antar studi. Tujuan: Review ini bertujuan menyusun kerangka sistematis parameter evaluasi yang perlu dilakukan dalam karakterisasi dan pengembangan sediaan microneedle, yang mencakup enam domain utama: karakterisasi struktur dan sifat fisik, evaluasi sediaan, profil farmakokinetik, efikasi, stabilitas, dan keamanan. Metode: Penelusuran literatur secara naratif-sistematis dilakukan pada basis data PubMed, ScienceDirect, dan Google Scholar terhadap publikasi periode 2018–2025 menggunakan kata kunci microneedle yang dikombinasikan dengan operator Boolean AND/OR. Kriteria inklusi meliputi artikel penelitian asli berbahasa Inggris pada microneedle berbasis polimer yang dimuat zat aktif dan melaporkan minimal satu parameter evaluasi. Hasil: Identifikasi literatur menghasilkan enam domain evaluasi yang harus dilakukan: (1) karakterisasi struktur melalui Scanning Electron Microscopy (SEM), pengukuran kekuatan mekanik (rentang 0,22–32 N), dan ketebalan patch (38 µm–1 mm); (2) evaluasi sediaan melalui insertion test (kedalaman penetrasi 200–600 µm), drug loading (38–99%), uji disolusi (1,5–20 menit), uji difusi Franz cell, dan kadar kelembapan (2,25–3,8%); (3) studi farmakokinetik in vivo yang ditunjukkan pada patch microneedle cannabidiol dengan bioavailabilitas relatif 144,70% dibandingkan injeksi subkutan; (4) evaluasi efikasi yang disesuaikan dengan indikasi terapeutik (antikanker, antidiabetes, antiinflamasi, antihipertensi, antibakterial, dan dermatologi); (5) uji stabilitas mengacu pada pedoman ICH Q1A (R2) dengan kondisi dipercepat, intermediet, dan jangka panjang; serta (6) evaluasi keamanan melalui uji iritasi Draize dengan parameter Primary Irritation Index (PII) yang menunjukkan iritasi ringan dan reversibel. Simpulan: Pengembangan sediaan microneedle yang berkualitas mensyaratkan pelaksanaan keenam domain evaluasi secara terpadu. Kerangka sistematis ini dapat menjadi acuan standar bagi peneliti dan pengembang microneedle di Indonesia, sekaligus mendorong harmonisasi metode evaluasi dengan pedoman internasional untuk memfasilitasi translasi klinis dan registrasi produk domestik.
Unduhan
Referensi
Alkhiro, A. R. & Ghareeb, M. M. (2020). Formulation and evaluation of lornoxicam as dissolving microneedle patch. Iraqi Journal of Pharmaceutical Sciences, 29(1), 184–194. https://doi.org/10.31351/vol29iss1pp184-194
Ando, D., Miyatsuji, M., Sakoda, H., Yamamoto, E. & Miyazaki, T. (2024). Mechanical characterization of dissolving microneedles: factors affecting physical strength of needles. Pharmaceutics, 16(2), 200. https://doi.org/10.3390/pharmaceutics16020200
Annisa, V. (2020). Sistem penghantaran obat transdermal dissolving microneedle (DMN) serta potensinya sebagai penghantaran vaksin. Acta Pharmaciae Indonesia, 8(1), 36–44. https://doi.org/10.20884/1.api.2020.8.1.2591
Anwar, I., Zafar, N., Mahmood, A., Zulcaif, Z. & Latif, R. (2025). Sustained release microneedle patch for pronounced systemic delivery of doxazosin mesylate. BioImpacts, 15, 30257. https://doi.org/10.34172/bi.30257
Bagde, A., Mosley-Kellum, K., Spencer, S. & Singh, M. (2024). 3D DLP-printed cannabinoid microneedles patch and its pharmacokinetic evaluation in rats. Journal of Pharmacy and Pharmacology, 76(6), 616–626. https://doi.org/10.1093/jpp/rgae043
Bhuvaneshwaran, A. & Rathnam, G. (2022). Formulation and evaluation of heparin microneedle transdermal patch. International Journal of Pharmaceutical Sciences and Research, 13(3), 1170–1178. https://doi.org/10.13040/IJPSR.0975-8232.13(3).1170-78
Chanabodeechalermrung, B., Chaiwarit, T., Chaichit, S., Udomsom, S., Baipaywad, P., Worajittiphon, P. & Jantrawut, P. (2024). HPMC/PVP K90 dissolving microneedles fabricated from 3D-printed master molds: impact on microneedle morphology, mechanical strength, and topical dissolving property. Polymers, 16(4), 452. https://doi.org/10.3390/polym16040452
Charmeau-Genevois, C., Sarang, S., Perea, M., Eadsforth, C., Austin, T. & Thomas, P. (2021). A simplified index to quantify the irritation/corrosion potential of chemicals—Part I: skin. Regulatory Toxicology and Pharmacology, 123, 104922. https://doi.org/10.1016/j.yrtph.2021.104922
Chen, G., Hao, B., Ju, D., Liu, M., Zhao, H., Du, Z. & Xia, J. (2015). Pharmacokinetic and pharmacodynamic study of triptolide-loaded liposome hydrogel patch under microneedles on rats with collagen-induced arthritis. Acta Pharmaceutica Sinica B, 5(6), 569–576. https://doi.org/10.1016/j.apsb.2015.09.006
Dave, R., Shinde, S., Kalayil, N. & Budar, A. (2024). Engineering microscopic delivery systems: a review of dissolving microneedle design, fabrication, and function. Micro and Nano Systems Letters, 12, 14. https://doi.org/10.1186/s40486-024-00204-2
Donnelly, R. F., Singh, T. R. R. & Woolfson, A. D. (2010). Microneedle-based drug delivery systems: microfabrication, drug delivery, and safety. Drug Delivery, 17(4), 187–207. https://doi.org/10.3109/10717541003667798
Habib, R., Azad, A. K., Akhlaq, M., Al-Joufi, F. A., Shahnaz, G., Mohamed, H. R. H., Naeem, M. & Almalki, A. S. A. (2022). Thiolated chitosan microneedle patch of levosulpiride from enhancement approach. Materials, 15(21), 7848. https://doi.org/10.3390/ma15217848
Han, J., Lee, G.-Y., Bae, G., Kang, M.-J. & Lim, K.-M. (2021). ChemSkin reference chemical database for the development of an in vitro skin irritation test. Toxics, 9(11), 314. https://doi.org/10.3390/toxics9110314
He, J., Zhang, Z., Zheng, X., Li, L., Qi, J. & Wu, W. (2021). Design and evaluation of dissolving microneedles for enhanced dermal delivery of propranolol hydrochloride. Pharmaceutics, 13(4), 579. https://doi.org/10.3390/pharmaceutics13040579
Huang, S., Liu, H., Huang, S., Fu, T., Xue, W. & Guo, R. (2020). Dextran methacrylate hydrogel microneedles loaded with doxorubicin and trametinib for continuous transdermal administration of melanoma. Carbohydrate Polymers, 246, 116650. https://doi.org/10.1016/j.carbpol.2020.116650
Iachina, I., Eriksson, A. H., Bertelsen, M., Petersson, K., Jansson, J., Kemp, P., Engell, K. M., Brewer, J. R. & Nielsen, K. T. (2023). Dissolvable microneedles for transdermal drug delivery showing skin penetration and modified drug release. European Journal of Pharmaceutical Sciences, 182, 106371. https://doi.org/10.1016/j.ejps.2023.106371
International Council for Harmonisation of Technical Requirements for Pharmaceuticals for Human Use [ICH]. (2003). Stability testing of new drug substances and products Q1A (R2). ICH.
Jung, J. H. & Jin, S. G. (2021). Microneedle for transdermal drug delivery: current trends and fabrication. Journal of Pharmaceutical Investigation, 51(5), 503–517. https://doi.org/10.1007/s40005-021-00512-4
Khalid, A., Sarwar, H. S., Sarfraz, M., Sohail, M. F., Jalil, A., Bin Jardan, Y. A., Arshad, R., Tahir, I. & Ahmad, Z. (2023). Formulation and characterization of thiolated chitosan/polyvinyl acetate based microneedle patch for transdermal delivery of dydrogesterone. Saudi Pharmaceutical Journal, 31(5), 669–677. https://doi.org/10.1016/j.jsps.2023.03.007
Khalid, R., Mahmood, S., Mohamed Sofian, Z. & Chik, Z. (2025). Development of rapidly dissolving microneedles integrated with valsartan-loaded nanoliposomes for transdermal drug delivery: in vitro and ex vivo evaluation. Pharmaceutics, 17(2), 155. https://doi.org/10.3390/pharmaceutics17020155
Khan, S., Minhas, M. U., Tekko, I. A., Donnelly, R. F. & Thakur, R. R. S. (2019). Evaluation of microneedles-assisted in situ depot forming poloxamer gels for sustained transdermal drug delivery. Drug Delivery and Translational Research, 9(4), 764–782. https://doi.org/10.1007/s13346-019-00617-2
Lee, I. C., Lin, W. M., Shu, J. C., Tsai, S. W., Chen, C. H.& Tsai, M. T. (2016). Formulation of two-layer dissolving polymeric microneedle patches for insulin transdermal delivery in diabetic mice. Journal of Biomedical Materials Research Part A, 105(1), 84–93. https://doi.org/10.1002/jbm.a.35869
Lee, J. W., Choi, S. O., Felner, E. I. & Prausnitz, M. R. (2011). Dissolving microneedle patch for transdermal delivery of human growth hormone. Small, 7(4), 531–539. https://doi.org/10.1002/smll.201001091
Li, S., Chen, Q., Zhang, Y., Wang, D., Hu, H., Li, J., Zhang, C. & Zhang, J. (2024). Hyaluronic acid dissolving microneedle patch-assisted acupoint transdermal delivery of triptolide for effective rheumatoid arthritis treatment. Scientific Reports, 14(1), 25256. https://doi.org/10.1038/s41598-024-76341-w
Liu, Y., Mao, R., Han, S., Yu, Z., Xu, B. & Xu, T. (2024). Polymeric microneedle drug delivery systems: mechanisms of treatment, material properties, and clinical applications—a comprehensive review. Polymers, 16(18), 2568. https://doi.org/10.3390/polym16182568
Patel, B.& Thakkar, H. (2023). Formulation development of fast dissolving microneedles loaded with cubosomes of febuxostat: in vitro and in vivo evaluation. Journal of Drug Delivery Science and Technology, 81, 104167. https://doi.org/10.1016/j.jddst.2023.104167
Permana, A. D., Mir, M., Utomo, E. & Donnelly, R. F. (2020). Bacterially sensitive nanoparticle-based dissolving microneedles of doxycycline for enhanced treatment of bacterial biofilm skin infection: a proof of concept study. International Journal of Pharmaceutics: X, 2, 100047. https://doi.org/10.1016/j.ijpx.2020.100047
Prausnitz, M. R. & Langer, R. (2008). Transdermal drug delivery. Nature Biotechnology, 26(11), 1261–1268. https://doi.org/10.1038/nbt.1504
Soorani, M., Anjani, Q. K., Larrañeta, E., Donnelly, R. F. & Das, D. B. (2024). Modelling insertion behaviour of PVP (polyvinylpyrrolidone) and PVA (polyvinyl alcohol) microneedles. International Journal of Pharmaceutics, 664, 124620. https://doi.org/10.1016/j.ijpharm.2024.124620
Wang, Q. L., Ren, J. W., Chen, B. Z., Jin, X., Zhang, C. Y. & Guo, X. D. (2018). Effect of humidity on mechanical properties of dissolving microneedles for transdermal drug delivery. Journal of Industrial and Engineering Chemistry, 59, 251–258. https://doi.org/10.1016/j.jiec.2017.10.030
Zhang, C., Vora, L. K., Tekko, I. A., Volpe-Zanutto, F., Peng, K., Paredes, A. J., McCarthy, H. O. & Donnelly, R. F. (2023). Development of dissolving microneedles for intradermal delivery of the long-acting antiretroviral drug bictegravir. International Journal of Pharmaceutics, 642, 123108. https://doi.org/10.1016/j.ijpharm.2023.123108
Zhang, Y., Wu, M., Tan, D., Liu, Q., Xia, R., Chen, M., Liu, Y., Xue, L. & Lei, Y. (2020). A dissolving and glucose-responsive insulin-releasing microneedle patch for type 1 diabetes therapy. Journal of Materials Chemistry B, 9(3), 648–657. https://doi.org/10.1039/d0tb02133d
Zhao, J., Xu, G., Yao, X., Zhou, H., Lyu, B., Pei, S. & Wen, P. (2021). Microneedle-based insulin transdermal delivery system: current status and translation challenges. Drug Delivery and Translational Research, 12(10), 2403–2427. https://doi.org/10.1007/s13346-021-01077-3
Zhao, W., Zheng, L., Yang, J., Ma, Z. & Tao, X. (2023). Dissolving microneedle patch-assisted transdermal delivery of methotrexate improve the therapeutic efficacy of rheumatoid arthritis. Drug Delivery, 30(1), 7544. https://doi.org/10.1080/10717544.2022.2157518
Zulcaif, Z., Zafar, N., Mahmood, A. & Sarfraz, R. M. (2023). Simvastatin loaded dissolvable microneedle patches with improved pharmacokinetic performance. Micromachines, 14(4), 825. https://doi.org/10.3390/mi14040825
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