Advancements in Medical Textiles and the Integration of Herbal Extracts
Article Sidebar
Main Article Content
Medical textiles, also known as healthcare textiles, are a rapidly advancing segment of technical textiles with applications in wound care, infection control, tissue engineering, and medical devices. Current research focuses on developing multifunctional textiles that enhance safety, therapeutic performance, and environmental sustainability while minimizing cross-infection risks in healthcare settings. In this context, the incorporation of herbal bioactives has gained attention due to their inherent antimicrobial, anti-inflammatory, antioxidant, and wound-healing properties. Extracts derived from medicinal plants such as Azadirachta indica (neem), Aloe vera, Curcuma longa (turmeric), and Ocimum sanctum (tulsi) offer natural, biocompatible, and biodegradable alternatives to conventional synthetic finishes used in medical textiles. The intention of this review article is to critically examine recent developments in medical textiles, with a specific emphasis on the medical classification, requirements, and performance of healthcare textiles. It covers various techniques involved in the finishing of fabrics with herbal extracts, such as coating, grafting, microencapsulation, sol-gel processing, and nanotechnology-assisted delivery systems. This review presents future opportunities for herbal-functionalized medical textiles as sustainable and patient-centric solutions for next-generation healthcare applications.
Downloads
References
Ahmed, L. A., Hussain, A., Barbhuiya, P. A., Zaman, S., Laskar, A. M., Pathak, M. P., Dutta, P. P., & Sen, S. (2025). Herbal Medicine for the Management of Wounds: A Systematic Review of Clinical Studies. Infectious Disorders - Drug Targets, 25(5). https://doi.org/10.2174/0118715265320593241007095952
Altman, G. H., Diaz, F., Jakuba, C., Calabro, T., Horan, R. L., Chen, J., Lu, H., Richmond, J., & Kaplan, D. L. (2003). Silk-based biomaterials. Biomaterials, 24(3), 401–416. https://doi.org/10.1016/S01429612(02)00353-8
Anand, U., Tudu, C. K., Nandy, S., Sunita, K., Tripathi, V., Loake, G. J., Dey, A., & Proćków, J. (2022). Ethnodermatological use of medicinal plants in India: From ayurvedic formulations to clinical perspectives – A review. Journal of Ethnopharmacology, 284, 114744. https://doi.org/10.1016/j.jep.2021.114744
Anandjiwala, R. D. (2006). ROLE OF ADVANCED TEXTILE MATERIALS IN HEALTHCARE. In Medical Textiles and Biomaterials for Healthcare (pp. 90–98). Elsevier. https://doi.org/10.1533/9781845694104.2.90
Askari, M., Jadid Tavaf, M., Ghorbani, M., Yazdanian, M., & Moghaddam, M. M. (2024). Electrospun Propolis-coated PLGA Scaffold Enhances the Osteoinduction of Mesenchymal Stem Cells. Current Stem Cell Research & Therapy, 19(1), 94–102. https://doi.org/10.2174/1574888X18666230330104314
Bibi, A., Afza, G., Afzal, Z., Farid, M., Sumrra, S. H., Hanif, M. A., Kolita Kama Jinadasa, B. K., & Zubair, M. (2024). Synthetic vs. natural antimicrobial agents for safer textiles: a comparative review. RSC Advances, 14(42), 30688–30706. https://doi.org/10.1039/D4RA04519J
Catalano, A., Ceramella, J., Iacopetta, D., Marra, M., Conforti, F., Lupi, F. R., Gabriele, D., Borges, F., & Sinicropi, M. S. (2024). Aloe vera―An Extensive Review Focused on Recent Studies. Foods, 13(13), 2155. https://doi.org/10.3390/foods13132155
Chelu, M., Musuc, A. M., Popa, M., & Calderon Moreno, J. (2023). Aloe vera-Based Hydrogels for Wound Healing: Properties and Therapeutic Effects. Gels, 9(7), 539. https://doi.org/10.3390/gels9070539
Chen, M., Yu, W., Shi, Q., Wen, H., Li, G., Wang, Y., Wang, T., Liu, S., & Yang, T. (2024). Boosting the Anti-Infection Ability of Titanium Implants by Coating Polydopamine–Curcumin. Coatings, 14(5), 640. https://doi.org/10.3390/coatings14050640
Ebenezer, P., Kumara, S. P. S. N. B. S., Senevirathne, S. W. M. A. I., Bray, L. J., Wangchuk, P., Mathew, A., & Yarlagadda, P. K. D. V. (2025). Advancements in Antimicrobial Surface Coatings Using Metal/Metaloxide Nanoparticles, Antibiotics, and Phytochemicals. Nanomaterials, 15(13), 1023. https://doi.org/10.3390/nano15131023
El Mihyaoui, A., Esteves da Silva, J. C. G., Charfi, S., Candela Castillo, M. E., Lamarti, A., & Arnao, M. B. (2022). Chamomile (Matricaria chamomilla L.): A Review of Ethnomedicinal Use, Phytochemistry and Pharmacological Uses. Life, 12(4), 479. https://doi.org/10.3390/life12040479
Gheorghita, R., Filip, R., Lupaescu, A.-V., Iavorschi, M., Anchidin-Norocel, L., & Gutt, G. (2023). Innovative Materials with Possible Applications in the Wound Dressings Field: Alginate-Based Films with Moringa oleifera Extract. Gels, 9(7), 560. https://doi.org/10.3390/gels9070560
H Mondal, Md. I. (2023). Anti-microbial Finishing of Cotton Fabric Using Neem Leaf Extract for Medical and Healthcare Textiles. Research in Medical & Engineering Sciences, 10(3). https://doi.org/10.31031/RMES.2023.10.000736
Hossain, M. M., Islam, T., Jalil, M. A., Rakibuzzaman, S. M., Surid, S. M., Zabed, M. R. I., Talukder, A., & Hossain, S. (2024). Advancements of eco‐friendly natural antimicrobial agents and their transformative role in sustainable textiles. SPE Polymers, 5(3), 241–276. https://doi.org/10.1002/pls2.10135
Ivanovska, A., Milošević, M., Obradović, B., Svirčev, Z., & Kostić, M. (2023). Plasma Treatment as a Sustainable Method for Enhancing the Wettability of Jute Fabrics. Sustainability, 15(3), 2125. https://doi.org/10.3390/su15032125
Liu, H., Bai, Y., Huang, C., Wang, Y., Ji, Y., Du, Y., Xu, L., Yu, D.-G., & Bligh, S. W. A. (2023). Recent Progress of Electrospun Herbal Medicine Nanofibers. Biomolecules, 13(1), 184. https://doi.org/10.3390/biom13010184
Mishra, M. U., Tembhare, A. D., Baghele, N. S., Murjani, T. S., & Katre, V. J. (2025). Preparation and Evaluation of Herbal Sanitary Napkin for Menstrual Health. Journal for Research in Applied Sciences and Biotechnology, 4(1), 145–149. https://doi.org/10.55544/jrasb.4.1.18
Olmo, J. A.-D., Ruiz-Rubio, L., Pérez-Alvarez, L., Sáez-Martínez, V., & Vilas-Vilela, J. L. (2020). Antibacterial Coatings for Improving the Performance of Biomaterials. Coatings, 10(2), 139. https://doi.org/10.3390/coatings10020139
Paczkowska-Walendowska, M., Ignacyk, M., Miklaszewski, A., Plech, T., Karpiński, T. M., Kwiatek, J., Swora-Cwynar, E., Walendowski, M., & Cielecka-Piontek, J. (2024). Electrospun Nanofibers with Pomegranate Peel Extract as a New Concept for Treating Oral Infections. Materials, 17(11), 2558. https://doi.org/10.3390/ma17112558
Paul, S. C., Islam, S., Kaikobad, Sadman, M. S., Emon, M. H., Zaman, B., Islam, B., Hossen, S., Sarker, M. E., & Mamun, A. Al. (2025). Exploring Biodegradable Fibers as Sustainable Alternatives for Sanitary Napkin: A Comprehensive Review. Environmental Technology & Innovation, 104735. https://doi.org/10.1016/j.eti.2025.104735
Popescu, M., & Ungureanu, C. (2023). Green Nanomaterials for Smart Textiles Dedicated to Environmental and Biomedical Applications. Materials, 16(11), 4075. https://doi.org/10.3390/ma16114075
Presedence Research. (2025). Medical Textiles Market Size, Share and Trends 2025 to 2034.
Raina, R. K. , P. S. , V. P. K. , & P. N. K. (2008). (2008). Medicinal Plants and their Role in Wound Healing. Medicine, Environmental Science, Biology.
Ratner, B. D. , H. A. S. , S. F. J. , & L. J. E. (2013). An introduction to materials in medicine.
Saha, J., Ahmed, F., Mahmud, S. T., & Mondal, Md. I. H. (2022). Protective medical textiles for patients and health professionals. In Protective Textiles from Natural Resources (pp. 39–73). Elsevier. https://doi.org/10.1016/B978-0-323-90477-3.00007-9
Sain, A. S., & Juneja, S. J. (2024). Evaluation of Antimicrobial Properties of Linen Fabrics Dyed with Medicinal Herbal Extracts. Journal of Advanced Zoology. https://doi.org/10.53555/jaz.v45i6.5274
Salehi, N., Ghaee, A., Moris, H., Derhambakhsh, S., Sharifloo, M. M., & Safshekan, F. (2024). Electrospun zein nanofibers loaded with curcumin as a wound dressing: enhancing properties with PSS and PDADMAC layers. Biomedical Materials, 19(2), 025044. https://doi.org/10.1088/1748-605X/ad2a39
Schneider, G., Vieira, L. G., Carvalho, H. E. F. de, Sousa, Á. F. L. de, Watanabe, E., Andrade, D. de, & Silveira, R. C. de C. P. (2023). Textiles impregnated with antimicrobial substances in healthcare services: systematic review. Frontiers in Public Health, 11. https://doi.org/10.3389/fpubh.2023.1130829
Sharma, A., Khanna, S., Kaur, G., & Singh, I. (2021). Medicinal plants and their components for wound healing applications. Future Journal of Pharmaceutical Sciences, 7(1), 53. https://doi.org/10.1186/s43094021-00202-w
Simoncic, B., & Tomsic, B. (2010). Structures of Novel Antimicrobial Agents for Textiles - A Review. Textile Research Journal, 80(16), 1721–1737. https://doi.org/10.1177/0040517510363193
Sun, L., Jin, S., Feng, Y., & Liu, Y. (2025). Antibacterial nonwoven materials in medicine and healthcare. Journal of Biomaterials Applications, 39(7), 671–695. https://doi.org/10.1177/08853282241297872
Tummalapalli, M., Anjum, S., Kumari, S., & Gupta, B. (2016). Antimicrobial Surgical Sutures: Recent Developments and Strategies. Polymer Reviews, 56(4), 607–630. https://doi.org/10.1080/15583724.2015. 1119163
Walsh, T. R., Gales, A. C., Laxminarayan, R., & Dodd, P. C. (2023). Antimicrobial Resistance: Addressing a Global Threat to Humanity. PLOS Medicine, 20(7), e1004264. https://doi.org/10.1371/journal.pmed.1004264
Wang, X., Liang, Q., Luo, Y., Ye, J., Yu, Y., & Chen, F. (2024). Engineering the next generation of theranostic biomaterials with synthetic biology. Bioactive Materials, 32, 514–529. https://doi.org/10.1016/j.bioactmat.2023.10.018
Wylie, M. R., & Merrell, D. S. (2022). The Antimicrobial Potential of the Neem Tree Azadirachta indica. Frontiers in Pharmacology, 13. https://doi.org/10.3389/fphar.2022.891535
Xu, F.-W., Lv, Y.-L., Zhong, Y.-F., Xue, Y.-N., Wang, Y., Zhang, L.-Y., Hu, X., & Tan, W.-Q. (2021). Beneficial Effects of Green Tea EGCG on Skin Wound Healing: A Comprehensive Review. Molecules, 26(20), 6123. https://doi.org/10.3390/molecules26206123
Zhou, R., Zhang, W., Huang, J., Peng, W., Wang, W., Bo, R., Liu, M., & Li, J. (2024). A hydrogel dressing loaded with tea tree oil nanoemulsion accelerates methicillin-resistant Staphylococcus aureus-infected wound healing. Materials Today Communications, 39, 109218. https://doi.org/10.1016/j.mtcomm.2024.109218

This work is licensed under a Creative Commons Attribution 4.0 International License.
All articles published in our journal are licensed under CC-BY 4.0, which permits authors to retain copyright of their work. This license allows for unrestricted use, sharing, and reproduction of the articles, provided that proper credit is given to the original authors and the source.