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保留生物瓣内皮层治疗慢性下肢深静脉功能不全。

Retention of an autologous endothelial layer on a bioprosthetic valve for the treatment of chronic deep venous insufficiency.

机构信息

Department of Biomedical Engineering, Oregon Health and Science University, 3181 SW Sam Jackson Park Rd, L342, Portland, OR 97239, USA.

出版信息

J Vasc Interv Radiol. 2012 May;23(5):697-703. doi: 10.1016/j.jvir.2012.01.062. Epub 2012 Mar 10.

Abstract

PURPOSE

Percutaneous transcatheter implantation of porcine small intestinal submucosa (SIS) bioprosthetic valves has been reported as a treatment for chronic deep venous insufficiency (CDVI). Endothelial progenitor outgrowth cells (EOCs), isolated from whole ovine blood, were evaluated as a source of in vitro autologous seeding for SIS endothelialization. Retention of the EOC monolayer was evaluated to test the feasibility of delivering an endothelialized SIS valve.

MATERIALS AND METHODS

Twenty bioprosthetic venous valves were constructed from SIS sutured onto collapsible square stent frames and were seeded with ovine EOCs in vitro. Retention of the endothelial monolayer through valve loading and delivery (three valves), in vitro flow (three valves), and ex vivo flow (four valves) was evaluated with immunofluorescent staining and histologic analysis compared with paired unmanipulated control valves. In the ex vivo shunt loop, venous blood was pulled from an implanted dialysis catheter, through the valve, and returned to the sheep.

RESULTS

Immunofluorescent staining of EOCs on the valves after in vitro seeding revealed a confluent monolayer (95.6% ± 2.3% confluent) on each side of the valve. When examined by immunofluorescent staining, the endothelial monolayer remained intact after loading and delivery (97.1% ± 1.7%) and when subjected to flow in the in vitro loop (96.0% ± 3.0%). Histologic analysis of the valves subjected to the ex vivo shunt loop revealed retention of the endothelial monolayer.

CONCLUSIONS

Endothelial monolayers seeded on SIS were retained under loading and delivery, in vitro flow, and ex vivo flow. EOCs are a promising cell source for autologous endothelialization of bioprosthetic valves for the treatment of CDVI.

摘要

目的

经皮穿刺导管植入猪小肠黏膜下层(SIS)生物假体瓣膜已被报道可用于治疗慢性深静脉功能不全(CDVI)。从全绵羊血液中分离出的内皮祖细胞(EOC)被评估为 SIS 内皮化的体外自体接种的来源。评估 EOC 单层的保留情况,以测试输送内皮化 SIS 瓣膜的可行性。

材料和方法

将 SIS 缝合到可折叠的方形支架上构建 20 个生物假体静脉瓣膜,并在体外将绵羊 EOC 接种到瓣膜上。通过瓣膜加载和输送(3 个瓣膜)、体外流动(3 个瓣膜)和体外流动(4 个瓣膜)评估内皮单层的保留情况,并与配对的未处理对照瓣膜进行免疫荧光染色和组织学分析。在体外分流环中,静脉血从植入的透析导管中抽出,通过瓣膜,然后返回羊体内。

结果

体外接种后瓣膜上 EOC 的免疫荧光染色显示瓣膜两侧均形成了一个连续的单层(95.6%±2.3%连续)。在加载和输送后(97.1%±1.7%)以及在体外循环中流动时(96.0%±3.0%),通过免疫荧光染色,内皮单层保持完整。对体外分流环中瓣膜进行组织学分析显示内皮单层得以保留。

结论

在加载和输送、体外流动和体外流动下,在 SIS 上接种的内皮单层得以保留。EOC 是生物假体瓣膜自体内皮化治疗 CDVI 的有前途的细胞来源。

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