Rong Hui, Sun Shupeng, Lu Manhua, Zhang Yiqun, Liu Lingyuan, Guo Ziwei, Zhang Zimeng, Ye Zhanpeng, Zhang Jianhua, Chen Budong, Li Shuangyang, Dong Anjie
Department of Polymer Science and Engineering, Key Laboratory of Systems Bioengineering (Ministry of Education), School of Chemical Engineering and Technology, Tianjin University, Tianjin 300072, PR China; Frontiers Science Center for Synthetic Biology, Key Laboratory of Systems Bioengineering(MOE), Tianjin University, Tianjin 300072, PR China.
Tianjin Key Laboratory of Cerebral Vascular and Neurodegenerative Diseases, Tianjin Key Laboratory of Cerebral Blood Flow Reconstruction and Head and Neck Tumor New Technology Translation, Tianjin Neurosurgical Institute, Tianjin Huanhu Hospital, Tianjin 300350, PR China; Department of Neurosurgery, Tianjin Huanhu Hospital, Tianjin, 300350, PR China.
Acta Biomater. 2025 Jan 15;192:206-217. doi: 10.1016/j.actbio.2024.12.038. Epub 2024 Dec 13.
The dura trauma or large defects due to neurosurgical procedures can result in potential complications. Dural replacements have proven effective to reduce the risk of seizures, meningitis, cerebrospinal fluid leakage, cerebral herniation, and infection. Although various artificial dural patches have been developed, addressing iatrogenic infections and cerebral adhesions resulting from patches implantation remains a challenge. This study employed a network interpenetration modification strategy to introduce super-hydrophilic and super-lubricity zwitterionic hydrogel coatings on polyurethane Neuro-Patch® (NP®) dura mater patch. The successful modification with the hydrogel coating preserved the intrinsic properties of the NP®, such as their anti-leakage and tensile strength capabilities, while effectively reducing biofouling on the surface of the patches. Additionally, by constructing subdural implantation for each dura mater substitute in rabbits, we observed that artificial dura mater patches modified with the hydrogel coating effectively reduced the incidence of postoperative cerebral adhesions and infections. This suggests a promising application prospect of the hydrogel coating in dural repair. STATEMENT OF SIGNIFICANCE: The development of dural substitutes with anti-leakage, anti-adhesion and anti-infection functions is the key to the treatment of dural defects and cerebrospinal fluid leakage during trauma or neurosurgery. In this study, the amphoteric ionic hydrogel coating was firmly modified on the surface of polyurethane with a mild modification process to give the patch super-hydrophilic and super-lubricating properties. The adhesion of non-specific proteins and bacteria is effectively reduced. The rabbit dural defect repair model showed that the introduction of zwitterionic hydrogel coating effectively reduced the occurrence of postoperative infection, and no tissue adhesion was observed. Taken together, this study offers a promising way to enhance the performance of artificial dural patches, potentially benefiting patients undergoing neurosurgery.
硬脑膜创伤或神经外科手术导致的大缺损可能会引发潜在并发症。硬膜替代物已被证明能有效降低癫痫、脑膜炎、脑脊液漏、脑疝和感染的风险。尽管已经开发出各种人工硬膜补片,但解决补片植入引起的医源性感染和脑粘连仍然是一个挑战。本研究采用网络互穿改性策略,在聚氨酯Neuro-Patch®(NP®)硬脑膜补片上引入超亲水和超润滑的两性离子水凝胶涂层。水凝胶涂层的成功改性保留了NP®的固有特性,如防漏和拉伸强度能力,同时有效减少了补片表面的生物污垢。此外,通过在兔子身上对每种硬脑膜替代物进行硬膜下植入,我们观察到用水凝胶涂层改性的人工硬脑膜补片有效降低了术后脑粘连和感染的发生率。这表明水凝胶涂层在硬脑膜修复中具有广阔的应用前景。重要性声明:开发具有防漏、抗粘连和抗感染功能的硬膜替代物是治疗创伤或神经外科手术期间硬脑膜缺损和脑脊液漏的关键。在本研究中,两性离子水凝胶涂层通过温和的改性过程牢固地修饰在聚氨酯表面,赋予补片超亲水和超润滑性能。有效减少了非特异性蛋白质和细菌的粘附。兔硬脑膜缺损修复模型表明,引入两性离子水凝胶涂层有效降低了术后感染的发生率,且未观察到组织粘连。综上所述,本研究为提高人工硬脑膜补片的性能提供了一种有前景的方法,可能使接受神经外科手术的患者受益。