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基于人血小板裂解物的生物黏附原位打印系统治疗角膜穿孔的研究

Development of an In Situ Printing System With Human Platelet Lysate-Based Bio-Adhesive to Treat Corneal Perforations.

机构信息

Save Sight Institute, Sydney Medical School, University of Sydney, Sydney, Australia.

ARC Centre of Excellence for Electromaterials Science, Intelligent Polymer Research Institute, AIIM, Innovation Campus, University of Wollongong, Wollongong, New South Wales, Australia.

出版信息

Transl Vis Sci Technol. 2022 Jun 1;11(6):26. doi: 10.1167/tvst.11.6.26.

Abstract

PURPOSE

Corneal perforation is a clinical emergency that can result in blindness. Currently corneal perforations are treated either by cyanoacrylate glue which is toxic to corneal cells, or by using commercial fibrin glue for small perforations. Both methods use manual delivery which lead to uncontrolled application of the glues to the corneal surface. Therefore, there is a need to develop a safe and effective alternative to artificial adhesives.

METHODS

Previously, our group developed a transparent human platelet lysate (hPL)-based biomaterial that accelerated corneal epithelial cells healing in vitro. This biomaterial was further characterized in this study using rheometry and adhesive test, and a two-component delivery system was developed for its application. An animal trial (5 New Zealand white rabbits) to compare impact of the biomaterial and cyanoacrylate glue (control group) on a 2 mm perforation was conducted to evaluate safety and efficacy.

RESULTS

The hPL-based biomaterial showed higher adhesiveness compared to commercial fibrin glue. Treatment rabbits had lower pain scores and faster recovery, despite generating similar scar-forming structure compared to controls. No secondary corneal ulcer was generated in rabbits treated with the bio-adhesive.

CONCLUSIONS

This study reports an in situ printing system capable of delivering a hPL-based, transparent bio-adhesive and successfully treating small corneal perforations. The bio-adhesive-treated rabbits recovered faster and required no additional analgesia.

TRANSLATIONAL RELEVANCE

The developed in situ hPL bio-adhesives treatment represents a new format of treating corneal perforation that is easy to use, allows for accurate application, and can be a potentially effective and pain relief treatment.

摘要

目的

角膜穿孔是一种可能导致失明的临床急症。目前,角膜穿孔的治疗方法要么是使用对角膜细胞有毒的氰基丙烯酸酯胶,要么是使用商业纤维蛋白胶治疗小穿孔。这两种方法都采用手动输送,导致胶在角膜表面的应用无法控制。因此,需要开发一种安全有效的替代人工粘合剂。

方法

我们的小组之前开发了一种基于透明人血小板裂解液(hPL)的生物材料,该材料在体外加速了角膜上皮细胞的愈合。在这项研究中,进一步使用流变学和粘合测试对该生物材料进行了表征,并开发了一种双组分输送系统用于其应用。进行了一项动物试验(5 只新西兰白兔),比较了该生物材料和氰基丙烯酸酯胶(对照组)对 2mm 穿孔的影响,以评估安全性和有效性。

结果

与商业纤维蛋白胶相比,基于 hPL 的生物材料显示出更高的粘性。尽管与对照组相比,治疗组产生了相似的瘢痕形成结构,但治疗兔子的疼痛评分更低,恢复更快。用生物粘合剂治疗的兔子没有产生继发性角膜溃疡。

结论

本研究报告了一种能够输送基于 hPL 的透明生物粘合剂的原位打印系统,并成功治疗了小的角膜穿孔。用生物粘合剂治疗的兔子恢复得更快,不需要额外的镇痛。

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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a250/9251791/8a77ca7f9564/tvst-11-6-26-f001.jpg

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