Xuchen Wang , Hongqiang Shen , Dahua Shou , Yu Liu , Tianyi Wang , Zhaozhu Zheng , Zeyu Zhao , Xiaoqin Wang , Gang Li
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引用次数: 0
摘要
手术缝合线对伤口闭合至关重要,不同的伤口部位需要具有特定机械性能和生物降解率的缝合线。虽然蚕丝缝合线的临床应用历史悠久,但由于其在人体内降解缓慢,通常被认为是不可吸收的。在本研究中,我们介绍了一种可吸收手术丝缝线(ASS)的开发情况,这种缝线具有可控的生物降解性和机械性能,以及出色的生物相容性和抗菌特性。这种可吸收手术蚕丝缝合线是利用蛋白酶 K 对脱胶编织蚕丝缝合线进行直接酶水解而制成的。此外,我们还采用了再生蚕丝纤维素(RSF)涂层技术,在水和甲醇气氛下进行蒸气处理,从而增强了 ASS 的机械性能。酶水解和 RSF 涂层技术的结合可以定制 ASS 的生物降解率,同时确保缝合线的直径和拉伸强度符合美国药典 (USP) 的可吸收缝合线标准。这种创新方法满足了医疗专业人员和患者的动态需求,为伤口闭合提供了一种新颖的解决方案。
A braided surgical silk suture with controllable biodegradability via enzymatic hydrolysis
Surgical sutures are essential in wound closure, with different wound sites demanding sutures with specific mechanical properties and biodegradation rates. While silk sutures have a rich history of clinical use, they are typically regarded as nonabsorbable due to their slow degradation in the human body. In this study, we present the development of an absorbable surgical silk suture (ASS) that features controllable biodegradability and mechanical properties, along with excellent biocompatibility and antibacterial attributes. The ASS was created through a straightforward enzymatic hydrolysis process using proteinase K on degummed braided silk sutures. Additionally, we enhance the mechanical properties of the ASS by applying a regenerated silk fibroin (RSF) coating technology, which uses vapor treatment under water and methanol atmospheres. This combination of enzymatic hydrolysis and RSF coating technology allows for the customization of ASS's biodegradation rates while ensuring that the suture diameter and tensile strength comply with the United States Pharmacopeia (USP) standards for absorbable sutures. This innovative approach addresses the dynamic needs of medical professionals and patients alike, providing a novel solution for wound closure.
期刊介绍:
Polymer Degradation and Stability deals with the degradation reactions and their control which are a major preoccupation of practitioners of the many and diverse aspects of modern polymer technology.
Deteriorative reactions occur during processing, when polymers are subjected to heat, oxygen and mechanical stress, and during the useful life of the materials when oxygen and sunlight are the most important degradative agencies. In more specialised applications, degradation may be induced by high energy radiation, ozone, atmospheric pollutants, mechanical stress, biological action, hydrolysis and many other influences. The mechanisms of these reactions and stabilisation processes must be understood if the technology and application of polymers are to continue to advance. The reporting of investigations of this kind is therefore a major function of this journal.
However there are also new developments in polymer technology in which degradation processes find positive applications. For example, photodegradable plastics are now available, the recycling of polymeric products will become increasingly important, degradation and combustion studies are involved in the definition of the fire hazards which are associated with polymeric materials and the microelectronics industry is vitally dependent upon polymer degradation in the manufacture of its circuitry. Polymer properties may also be improved by processes like curing and grafting, the chemistry of which can be closely related to that which causes physical deterioration in other circumstances.