Wits Advanced Drug Delivery Platform Research Unit, Department of Pharmacy and Pharmacology, School of Therapeutic Sciences, Faculty of Health Sciences, University of the Witwatersrand, Parktown, Johannesburg, South Africa.
J Biomed Mater Res B Appl Biomater. 2022 Oct;110(10):2189-2210. doi: 10.1002/jbm.b.35069. Epub 2022 Apr 4.
In this research, a novel bioabsorbable suture that is, monofilament and capable of localized drug delivery, was developed from a combination of natural biopolymers that where not previously applied for this purpose. The optimized suture formulation comprised of sodium alginate (6% wt/vol), pectin (0.1% wt/vol), and gelatin (3% wt/vol), in the presence of glycerol (4% vol/vol) which served as a plasticizer. The monofilament bioabsorbable sutures where synthesized via in situ ionic crosslinking in a barium chloride solution (2% wt/vol). The resulting suture was characterized in terms of mechanical properties, morphology, swelling, degradation, drug release, and biocompatibility, in addition to Fourier-transform infrared (FTIR) spectroscopy, Powder X-ray Diffraction (PXRD) and Differential Scanning Calorimetry (DSC) analysis. The drug loaded and non-drug loaded sutures had a maximum breaking strength of 4.18 and 4.08 N, in the straight configuration and 2.44 N and 2.59 N in the knot configuration, respectively. FTIR spectrum of crosslinked sutures depicted Δ9 cm downward shift for the carboxyl stretching band which was indicative of ionic interactions between barium ions and sodium alginate. In vitro analysis revealed continued drug release for 7 days and gradual degradation by means of surface erosion, which was completed by day 28. Biocompatibility studies revealed excellent hemocompatibility and no cytotoxicity. These results suggest that the newly developed bioabsorbable suture meets the basic requirements of a suture material and provides a viable alternative to the synthetic polymer sutures that are currently on the market.
在这项研究中,开发了一种新型的可生物吸收缝线,它是一种单丝,能够进行局部药物输送,由以前未用于此目的的天然生物聚合物组合而成。优化的缝线配方由海藻酸钠(6%wt/vol)、果胶(0.1%wt/vol)和明胶(3%wt/vol)组成,存在甘油(4%vol/vol)作为增塑剂。单丝可生物吸收缝线通过在氯化钡溶液(2%wt/vol)中的原位离子交联合成。对所得缝线进行了机械性能、形态、溶胀、降解、药物释放和生物相容性的表征,此外还进行了傅里叶变换红外(FTIR)光谱、粉末 X 射线衍射(PXRD)和差示扫描量热法(DSC)分析。载药和非载药缝线在直线构型下的最大断裂强度分别为 4.18 和 4.08 N,在结构型下分别为 2.44 和 2.59 N。交联缝线的 FTIR 光谱显示羧基伸缩带向下移动了 Δ9 cm,表明钡离子和海藻酸钠之间存在离子相互作用。体外分析显示,药物持续释放 7 天,并通过表面侵蚀逐渐降解,到第 28 天降解完成。生物相容性研究显示出良好的血液相容性和无细胞毒性。这些结果表明,新开发的可生物吸收缝线满足缝线材料的基本要求,并为目前市场上的合成聚合物缝线提供了一种可行的替代方案。