Fabrication of Tannic Acid coated Polyglactin Surgical Suture to Prevent Bacterial Infection
DOI:
https://doi.org/10.35335/midwifery.v10i4.704Keywords:
Suture, Polyglactin, Infection, Tannic AcidAbstract
Polyglactin surgical (PLGA) suture is a b biodegradable raidedsuture frequently used in clinical surgery. Due to its braided structure, polyglactin suture is easier contaminated by bacterial during surgery process. Thus, this study was coated by tannic acid (TA) to prevent Staphylococcus aureus binding. Suture surface modification was carried out by immersing PLGA in tannic acid- ferri chloride (TA-Fe) solution pH 8. The fabrication process was confirmed by FTIR analysis, and the antibacterial preventing activity was determined by bioinformatics analysis. Thus, this engineered suture increased the wettability in DI water, serum, and saline solutions, which could be promising to increase the biocompatibility in wound healing process. To sum up, our method would be applied in surgical suture to prevent bacterial infection and potentially elevate the biocompatibility by increasing wettability in biological solutions.
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Akiyama, H., Fujii, K., Yamasaki, O., Oono, T., & Iwatsuki, K. (2001). Antibacterial action of several tannins against Staphylococcus aureus. J. Antimicrob. Chemother., 48(4), 487–491.
Baghel, A., Haripriya, A., & Haripriya, V. (2015). Evaluation of Absorbable and Non - Absorbable Sutures in a Cohort Study, 4(52), 9088–9093.
Bochtler, M. Hartmann C., Song H.K., Bourenkov, G.P., Bartunik, H.D. 2000. The structure of HslU and the ATP-dependent protease HslU-HslV. Nature 403 (6771): 800-805.
Bojer, M.S., Struve C., Ingmer, H., Hansen, D.S., Krogfelt, K.A. 2010. Heat resistance mediated by a New Plasmid Encoded Clp ATPase, ClpK, as a Possible Novel Mechanism for Nosocomial Persistence of Klebsiella pneumonia. Plos One. 5(11): e15467.
De Simone, B., Sartelli, M., Coccolini, F., Ball, C. G., Brambillasca, P., Chiarugi, M., Campanile, F. C., Nita, G., Corbella, D., Leppaniemi, A., Boschini, E., Moore, E. E., Biffl, W., Peitzmann, A., Kluger, Y., Sugrue, M., Fraga, G., Di Saverio, S., Weber, D., Catena, F. (2020). Intraoperative surgical site infection control and prevention: A position paper and future addendum to WSES intra-abdominal infections guidelines. World J. Emerg. Surg., 15(1), 1–23.
Debbabi, F., & Abdessalem, S. Ben. (2015). Effect of manufacturing conditions on structural and handling properties of braided polyamide suture. J. Eng. Fibers Fabr., 10(3), 121–128.
Dennis, C., Sethu, S., Nayak, S., Mohan, L., Morsi, Y., & Manivasagam, G. (2016). Suture materials - Current and emerging trends. J Biomed Mater Res A, 104(6), 1544–1559.
Dhom, J., Bloes, D. A., Peschel, A., & Hofmann, U. K. (2017). Bacterial adhesion to suture material in a contaminated wound model: Comparison of monofilament, braided, and barbed sutures. J. Orthop. Res 35(4), 925–933.
Dixit, A., Nadkarni, P., Shah, V., & Patel, B. (2018). Evaluation of safety and efficacy of polyglactin 910 suture in surgical incision closure : clinical study protocol for a randomized controlled trial Evaluation of safety and efficacy of polyglactin 910 suture in surgical incision closure : clinical study . Int J Clin Trials. 5(1):80-85
Drogt, C., Hanwright, P., Ha, M., Cantab, M. A., Bchirc, M. B., Ngaage, L. M., Cantab, M. A., Bchirc, M. B., Lin, M., Ge, S., Wu, Y., Silverman, R. P., & Rasko, Y. M. (2022). Wound Closure with Transcutaneous Absorbable Polyglactin Sutures after Hidradenitis Suppurativa Excision. Adv Skin Wound Care, 35, 1–4.
Huhtamäki T., Tian X., Korhonen J.T., Ras, R.H.A. (2018). Surface-wetting characterization using contact-angle measurements. Nat. Protoc. 13: 1521-1538.
Jeong, S. Ahn, J. Kwon A.R. Ha, N.C. 2020. Cleavage-dependent activation of AT-Dependeant Protease HslUV from Staphylococcus aureus. Mol Cells. 43(8): 694–704.
Kaczmarek, B. (2020). Tannic acid with antiviral and antibacterial activity as a promising component of biomaterials-A minireview. Materials, 13(14).
Lv, X., Wang, L., Fu, J., Li, Y., & Yu, L. (2020). A one-step tannic acid coating to improve cell adhesion and proliferation on polydimethylsiloxane. New J Chem, 44(35), 15140-15147.
Marzo, G., Loffredi, R., Marchetti, E., Di Martino, S., Di Pietro, C., Marinelli, G. (2008). In Vitro Antibacterial Efficacy of Vicryl Plus Suture (Coated Polyglactin 910 With Triclosan) Using Zone of Inhibition Assays.
Oral Implantol. 1(1): 43-48.
Mahesh, L., Kumar, V. R., Jain, A., Shukla, S., Aragoneses, J. M., & Fern, M. (2019). Bacterial Adherence Around Sutures of Di ff erent Material at Grafted Site : A Microbiological Analysis. 12, 1–8.
Menzies K.L., Jones L., (2010). The Impact of Contact Angle on the Biocompatibility of Biomaterials. Optom Vis Sci. 87(6): 387- 399.
Moreno-Cinos, C. Goossens, K., Salado, I.G., Van Der Veken P., De Winter, H., Augustyns,K. 2019. ClpP Protease, a Promising Antimicrobial Target, Int J Mol Sci. 20 (9): 2232.
Motiwala, T. Akumadu B.O. Zuma, S., Mfeka M.S., Chen W., Achilonu, I., Syed K. 2021. Caseinolytics Protein (Clp) in the Genus Klebsiella: Special Focus on ClpK. Plos One. 27(2): 200.
Tajirian, A. L., & Goldberg, D. J. (2010). A Review of Sutures and Other Skin Closure Materials. Journal Cosmet Laser Therapy, 12(6): 296-302.
Pal, S., Sayana, A., Joshi, A., & Juyal, D. (2019). Staphylococcus aureus: A predominant cause of surgical site infections in a rural healthcare setup of Uttarakhand.
Fam. Med. Prim. Care Rev., 8(11), 3600–3606.
Pillai, C. K. S., & Sharma, C. P. (2010). Review paper: Absorbable polymeric surgical sutures: Chemistry, production, properties, biodegradability, and performance. J. Biomater. Appl., 25(4), 291–366.
Sathiskumar, G., Gopinath, K., Zhang, K., Kang, E. T., Xu, L., & Yu, Y. (2022). Recent Progress In Tannic Acid-Driven Antibacterial/Antifouling Surface Coating Strategies. J Mater Chem B, 10(14): 2296-2315.
Setiawati, A., Jang, D., Cho, D., Cho, S., Jeong, H., Park, S., Gwak, J., Ryu, S. R., Jung, W. H., Ju, B. G., Jung, K. H., Kwon, O. S., & Shin, K. (2021). An Accelerated Wound-Healing Surgical Suture Engineered with an Extracellular Matrix. Adv Healthcare Mater., 10(6). 2001686
Singh V.K., Syring M., Singh A., Singhal, K., Dalecki, A., Johansson T. 2012. An Insight into the significance of the DnaK heat shock system in Staphylococcus aureus. Int J Med Microbiol. 302(6): 242-52.
Tinti A., Zhou W, Yu, D. (2015) Recent Application of Vibrational mid-Infrared (IR) Spectroscopy for Studying Soil Components: a Review. JCEA. 16(1): 1-22.
Xu, L., Liu, Y., Zhou, W., & Yu, D. (2022). Electrospun Medical Sutures for Wound Healing: A Review. Polymers, 14(9).
Wang, Z., Kang, H., Zhang, W., Zhang, S., & Li, J. (2017). Improvement of interfacial interactions using natural polyphenol-inspired tannic acid-coated nanoclay enhancement of soy protein isolate biofilms. Appl. Surf. Sci., 401, 271-282.
Zhou W-C., Tan P.F., Chen, X.H., Cen, Y., You, C., Tan L, Li, H., Tian M. (2020). Berberine-Incorporated Shape Memory Fiber as a Novel Surgical Suture. Front. Pharmacol. 10:1506.


