DUA DEKADE NANOKITOSAN DI BIDANG KESEHATAN: SEBUAH KAJIAN BIBLIOMETRIK TAHUN 2004-2024
DOI:
https://doi.org/10.30872/aa116n07Keywords:
Kesehatan, kitosan, nanokitosan, nanoteknologiAbstract
Berbagai kemajuan nanoteknologi dalam dua dekade terakhir telah mendorong lonjakan riset nanokitosan, bentuk nano dari kitosan yang biokompatibel, biodegradable, dan memiliki aktivitas antimikroba untuk keperluan biomedis dan farmasi. Studi ini menyajikan kajian bibliometrik 20 tahun terakhir mengenai nanokitosan di bidang kesehatan. Data bibliografis dikumpulkan dari basis data ilmiah internasional utama dan dianalisis menggunakan pendekatan bibliometrix serta pemetaan jaringan untuk mengeksplorasi dinamika publikasi, jenis dokumen, dokumen paling berpengaruh, serta peta kepadatan tema. Indikator yang dikaji meliputi jenis dokumen, tren publikasi tahunan, serta dokumen paling berpengaruh. Hasil menunjukkan peningkatan publikasi yang konsisten dengan fokus tema yang mengerucut pada sistem penghantaran obat (termasuk kemoterapi dan pengantaran mukosal), agen antimikroba dan antibiofilm, pembawa gen, serta aplikasi rekayasa jaringan dan perawatan luka. Dokumen paling sitasional umumnya mengulas modifikasi kimia/fisik, strategi enkapsulasi, serta efikasi-keamanan in vitro/in vivo. Temuan ini menyediakan peta komprehensif perkembangan ilmiah nanokitosan, mengidentifikasi area prioritas, dan memberi arah menuju implementasi klinis yang lebih aman, efektif, dan berkelanjutan.
References
Ali, A., & Ahmed, S. (2018). A review on chitosan and its nanocomposites in drug delivery. International journal of biological macromolecules, 109, 273-286.
Alimardani, V., Rahiminezhad, Z., DehghanKhold, M., Farahavar, G., Jafari, M., Abedi, M., Moradi, L., Niroumand, U., Ashfaq, M., & Abolmaali, S. S. (2023). Nanotechnology-based cell-mediated delivery systems for cancer therapy and diagnosis. Drug Delivery and Translational Research, 13(1), 189-221.
Baig, N., Kammakakam, I., & Falath, W. (2021). Nanomaterials: A review of synthesis methods, properties, recent progress, and challenges. Materials advances, 2(6), 1821-1871.
Boominathan, T., & Sivaramakrishna, A. (2021). Recent advances in the synthesis, properties, and applications of modified chitosan derivatives: challenges and opportunities. Topics in Current Chemistry, 379, 1-57.
Cao, L.-M., Yu, Y.-F., Li, Z.-Z., Zhong, N.-N., Wang, G.-R., Xiao, Y., Liu, B., Wu, Q.-J., Feng, C., & Bu, L.-L. (2024). Adjuvants for cancer mRNA vaccines in the era of nanotechnology: strategies, applications, and future directions. Journal of Nanobiotechnology, 22(1), 308.
Chandrasekaran, M., Kim, K. D., & Chun, S. C. (2020). Antibacterial activity of chitosan nanoparticles: A review. Processes, 8(9), 1173.
Cheung, R. C. F., Ng, T. B., Wong, J. H., & Chan, W. Y. (2015). Chitosan: an update on potential biomedical and pharmaceutical applications. Marine drugs, 13(8), 5156-5186.
Divya, K., Vijayan, S., George, T. K., & Jisha, M. (2017). Antimicrobial properties of chitosan nanoparticles: Mode of action and factors affecting activity. Fibers and polymers, 18, 221-230.
Dong, E., Huo, Q., Zhang, J., Han, H., Cai, T., & Liu, D. (2024). Advancements in nanoscale delivery systems: optimizing intermolecular interactions for superior drug encapsulation and precision release. Drug Delivery and Translational Research, 1-19.
Gan, Q., & Wang, T. (2007). Chitosan nanoparticle as protein delivery carrier—systematic examination of fabrication conditions for efficient loading and release. Colloids and Surfaces B: Biointerfaces, 59(1), 24-34.
Gan, Q., Wang, T., Cochrane, C., & McCarron, P. (2005). Modulation of surface charge, particle size and morphological properties of chitosan–TPP nanoparticles intended for gene delivery. Colloids and Surfaces B: Biointerfaces, 44(2-3), 65-73.
Hou, C., Yi, B., Jiang, J., Chang, Y.-F., & Yao, X. (2019). Up-to-date vaccine delivery systems: robust immunity elicited by multifarious nanomaterials upon administration through diverse routes. Biomaterials science, 7(3), 822-835.
Imran, H., Tang, Y., Wang, S., Yan, X., Liu, C., Guo, L., Wang, E., & Xu, C. (2023). Optimized DOX Drug Deliveries via Chitosan-Mediated Nanoparticles and Stimuli Responses in Cancer Chemotherapy: A Review. Molecules, 29(1), 31.
Iqbal, M. J., Javed, Z., Sadia, H., Mehmood, S., Akbar, A., Zahid, B., Nadeem, T., Roshan, S., Varoni, E. M., & Iriti, M. (2023). Targeted therapy using nanocomposite delivery systems in cancer treatment: highlighting miR34a regulation for clinical applications. Cancer cell international, 23(1), 84.
Jafernik, K., Ładniak, A., Blicharska, E., Czarnek, K., Ekiert, H., Wiącek, A. E., & Szopa, A. (2023). Chitosan-based nanoparticles as effective drug delivery systems—a review. Molecules, 28(4), 1963.
Jha, R., & Mayanovic, R. A. (2023). A review of the preparation, characterization, and applications of chitosan nanoparticles in nanomedicine. Nanomaterials, 13(8), 1302.
Kim, D., Wu, Y., Kim, Y. B., & Oh, Y.-K. (2021). Advances in vaccine delivery systems against viral infectious diseases. Drug Delivery and Translational Research, 11, 1401-1419.
Kowkabany, G., & Bao, Y. (2024). Nanoparticle Tracking Analysis: An Effective Tool to Characterize Extracellular Vesicles. Molecules, 29(19), 4672.
Lu, B., Lim, J. M., Yu, B., Song, S., Neeli, P., Sobhani, N., K, P., Bonam, S. R., Kurapati, R., & Zheng, J. (2024). The next-generation DNA vaccine platforms and delivery systems: Advances, challenges and prospects. Frontiers in immunology, 15, 1332939.
Malik, S., Muhammad, K., & Waheed, Y. (2023). Emerging applications of nanotechnology in healthcare and medicine. Molecules, 28(18), 6624.
Mawazi, S. M., Kumar, M., Ahmad, N., Ge, Y., & Mahmood, S. (2024). Recent applications of chitosan and its derivatives in antibacterial, anticancer, wound healing, and tissue engineering fields. Polymers, 16(10), 1351.
Mikušová, V., & Mikuš, P. (2021). Advances in chitosan-based nanoparticles for drug delivery. International journal of molecular sciences, 22(17), 9652.
Mistretta, M., Farini, A., Torrente, Y., & Villa, C. (2023). Multifaceted nanoparticles: emerging mechanisms and therapies in neurodegenerative diseases. Brain, 146(6), 2227-2240.
Mohammed, M. A., Syeda, J. T., Wasan, K. M., & Wasan, E. K. (2017). An overview of chitosan nanoparticles and its application in non-parenteral drug delivery. Pharmaceutics, 9(4), 53.
Murjani, B. O., Kadu, P. S., Bansod, M., Vaidya, S. S., & Yadav, M. D. (2022). Carbon nanotubes in biomedical applications: current status, promises, and challenges. Carbon Letters, 32(5), 1207-1226.
Park, S. H., Eun, R., Heo, J., & Lim, Y. T. (2023). Nanoengineered drug delivery in cancer immunotherapy for overcoming immunosuppressive tumor microenvironment. Drug Delivery and Translational Research, 13(7), 2015-2031.
Patel, J., Kumar, G. S., Roy, H., Maddiboyina, B., Leporatti, S., & Bohara, R. A. (2024). From nature to nanomedicine: bioengineered metallic nanoparticles bridge the gap for medical applications. Discover Nano, 19(1), 1-24.
Prakash, S. (2023). mRNA-based nanomedicine: a new strategy for treating infectious diseases and beyond. European Journal of Drug Metabolism and Pharmacokinetics, 48(5), 515-529.
Rana, I., Oh, J., Baig, J., Moon, J. H., Son, S., & Nam, J. (2023). Nanocarriers for cancer nano-immunotherapy. Drug Delivery and Translational Research, 13(7), 1936-1954.
Rizeq, B. R., Younes, N. N., Rasool, K., & Nasrallah, G. K. (2019). Synthesis, bioapplications, and toxicity evaluation of chitosan-based nanoparticles. International journal of molecular sciences, 20(22), 5776.
Shahalaei, M., Azad, A. K., Sulaiman, W. M. A. W., Derakhshani, A., Mofakham, E. B., Mallandrich, M., Kumarasamy, V., & Subramaniyan, V. (2024). A review of metallic nanoparticles: present issues and prospects focused on the preparation methods, characterization techniques, and their theranostic applications. Frontiers in Chemistry, 12, 1398979.
Sharifi-Rad, J., Quispe, C., Butnariu, M., Rotariu, L. S., Sytar, O., Sestito, S., Rapposelli, S., Akram, M., Iqbal, M., & Krishna, A. (2021). Chitosan nanoparticles as a promising tool in nanomedicine with particular emphasis on oncological treatment. Cancer cell international, 21(1), 318.
Sun, Z., Zhao, H., Ma, L., Shi, Y., Ji, M., Sun, X., Ma, D., Zhou, W., Huang, T., & Zhang, D. (2024). The quest for nanoparticle-powered vaccines in cancer immunotherapy. Journal of Nanobiotechnology, 22(1), 61.
Thakur, N., Thakur, S., Chatterjee, S., Das, J., & Sil, P. C. (2020). Nanoparticles as smart carriers for enhanced cancer immunotherapy. Frontiers in Chemistry, 8, 597806.
Wareham, L. K., Liddelow, S. A., Temple, S., Benowitz, L. I., Di Polo, A., Wellington, C., Goldberg, J. L., He, Z., Duan, X., & Bu, G. (2022). Solving neurodegeneration: common mechanisms and strategies for new treatments. Molecular neurodegeneration, 17(1), 23.
Yu, J., Wang, D., Geetha, N., Khawar, K. M., Jogaiah, S., & Mujtaba, M. (2021). Current trends and challenges in the synthesis and applications of chitosan-based nanocomposites for plants: A review. Carbohydrate Polymers, 261, 117904.
Zhang, Q., Kuang, G., Li, W., Wang, J., Ren, H., & Zhao, Y. (2023). Stimuli-responsive gene delivery nanocarriers for cancer therapy. Nano-Micro Letters, 15(1), 44.
Zhang, Y.-N., Auclair, S., & Zhu, J. (2024). Virus-like nanoparticle vaccines for inducing long-lasting immunity against infectious diseases. National science review, 11(4), nwae032.


