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通过界面结合制备的合成纳米纤维增强羊膜。

Synthetic Nanofiber-Reinforced Amniotic Membrane via Interfacial Bonding.

机构信息

Department of Hand & Microsurgery , Xiangya Hospital of Central South University , Changsha , Hunan Province 410008 , P. R. China.

Wuhan Kangchuang Technology , Wuhan , Hubei Province 430073 , P. R. China.

出版信息

ACS Appl Mater Interfaces. 2018 May 2;10(17):14559-14569. doi: 10.1021/acsami.8b03087. Epub 2018 Apr 19.

Abstract

Severe damage to the ocular surface can result in limbal stem cell (LSC) deficiency, which contributes to loss of corneal clarity, potential vision loss, chronic pain, photophobia, and keratoplasty failure. Human amniotic membrane (AM) is the most effective substrate for LSC transplantation to treat patients with LSC deficiency. However, the widespread use of the AM in the clinic remains a challenge because of the high cost for preserving freshly prepared AM and the weak mechanical strength of lyophilized AM. Here, we developed a novel composite membrane consisting of an electrospun bioabsorbable polymer fiber mesh bonded to a decellularized AM (dAM) sheet through interfacial conjugation. This membrane engineering approach drastically improved the tensile property and toughness of dAM, preserved similar levels of bioactivities as the dAM itself in supporting LSC attachment, growth, and maintenance, and retained significant anti-inflammatory capacity. These results demonstrate that the lyophilized nanofiber-dAM composite membrane offers superior mechanical properties for easy handling and suturing to the dAM, while presenting biochemical cues and basement membrane structure to facilitate LSC transplantation. This composite membrane exhibits major advantages for clinical applications in treating soft tissue damage and LSC deficiency.

摘要

严重的眼表损伤可导致角膜缘干细胞(limbal stem cell,LSC)缺失,这可导致角膜透明度丧失、潜在视力丧失、慢性疼痛、畏光和角膜移植失败。人羊膜(amniotic membrane,AM)是 LSC 移植治疗 LSC 缺失患者的最有效基底。然而,由于新鲜制备的 AM 保存成本高以及冻干 AM 机械强度弱,AM 在临床上的广泛应用仍然是一个挑战。在这里,我们开发了一种由静电纺丝生物可吸收聚合物纤维网与脱细胞 AM(decellularized AM,dAM)片通过界面结合形成的新型复合膜。这种膜工程方法极大地提高了 dAM 的拉伸性能和韧性,在支持 LSC 附着、生长和维持方面保持了与 dAM 本身相似的生物活性,并保留了显著的抗炎能力。这些结果表明,冻干纳米纤维-dAM 复合膜为 dAM 提供了更好的机械性能,便于处理和缝合,同时呈现出生物化学线索和基底膜结构,以促进 LSC 移植。该复合膜在治疗软组织损伤和 LSC 缺失的临床应用中具有显著优势。

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