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一种具有仿生设计的新型可吸收合成替代物用于硬脑膜组织修复。

A New Absorbable Synthetic Substitute With Biomimetic Design for Dural Tissue Repair.

作者信息

Shi Zhidong, Xu Tao, Yuan Yuyu, Deng Kunxue, Liu Man, Ke Yiquan, Luo Chengyi, Yuan Tun, Ayyad Ali

机构信息

Department of Neurosurgery, Third Affiliated Hospital, Sun Yat-sen University, Guangzhou, China.

Bio-Manufacturing Center, Department of Mechanical Engineering, Tsinghua University, Beijing, China.

出版信息

Artif Organs. 2016 Apr;40(4):403-13. doi: 10.1111/aor.12568. Epub 2015 Nov 2.

Abstract

Dural repair products are evolving from animal tissue-derived materials to synthetic materials as well as from inert to absorbable features; most of them lack functional and structural characteristics compared with the natural dura mater. In the present study, we evaluated the properties and tissue repair performance of a new dural repair product with biomimetic design. The biomimetic patch exhibits unique three-dimensional nonwoven microfiber structure with good mechanical strength and biocompatibility. The animal study showed that the biomimetic patch and commercially synthetic material group presented new subdural regeneration at 90 days, with low level inflammatory response and minimal to no adhesion formation detected at each stage. In the biological material group, no new subdural regeneration was observed and severe adhesion between the implant and the cortex occurred at each stage. In clinical case study, there was no cerebrospinal fluid leakage, and all the postoperation observations were normal. The biomimetic structure and proper rate of degradation of the new absorbable dura substitute can guide the meaningful reconstruction of the dura mater, which may provide a novel approach for dural defect repair.

摘要

硬脑膜修复产品正从动物组织衍生材料向合成材料发展,同时也从惰性材料向可吸收材料转变;与天然硬脑膜相比,它们大多缺乏功能和结构特性。在本研究中,我们评估了一种具有仿生设计的新型硬脑膜修复产品的性能和组织修复性能。这种仿生补片呈现出独特的三维非织造微纤维结构,具有良好的机械强度和生物相容性。动物研究表明,仿生补片组和市售合成材料组在90天时出现了新的硬膜下再生,各阶段炎症反应水平较低,粘连形成极少或未检测到。在生物材料组中,未观察到新的硬膜下再生,且在各阶段植入物与皮质之间均发生了严重粘连。在临床病例研究中,未出现脑脊液漏,所有术后观察均正常。新型可吸收硬脑膜替代物的仿生结构和适当的降解速率可指导硬脑膜进行有意义的重建,这可能为硬脑膜缺损修复提供一种新方法。

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