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肝素酶诱导的内皮糖萼降解加剧雄性小鼠肺缺血/再灌注损伤。

Heparanase-induced endothelial glycocalyx degradation exacerbates lung ischemia/reperfusion injury in male mice.

机构信息

Division of Lung Transplant and Lung Failure, Department of Cardiothoracic Surgery, University of Pittsburgh, Pittsburgh, Pennsylvania, USA.

Division of Pulmonary, Allergy, and Critical Care Medicine, Department of Medicine, University of Pittsburgh, Pittsburgh, Pennsylvania, USA.

出版信息

Physiol Rep. 2024 Oct;12(20):e70113. doi: 10.14814/phy2.70113.

Abstract

The endothelial glycocalyx (eGC) is a carbohydrate-rich layer on the vascular endothelium, and its damage can lead to endothelial and organ dysfunction. Heparanase (HPSE) degrades the eGC in response to cellular stress, but its role in organ dysfunction remains unclear. This study investigates HPSE's role in lung ischemia-reperfusion (I/R) injury. A left lung hilar occlusion model was used in B6 wildtype (WT) and HPSE genetic knockout () mice to induce I/R injury in vivo. The left lungs were ischemic for 1 h followed by reperfusion for 4 h prior to investigations of lung function and eGC status. Data were compared between uninjured lungs and I/R-injured lungs in WT and HPSE mice. WT lungs showed significant functional impairment after I/R injury, whereas HPSE lungs did not. Inhibition or knockout of HPSE prevented eGC damage, inflammation, and cellular migration after I/R injury by reducing matrix metalloproteinase activities. HPSE mice exhibited compensatory regulation of related gene expressions. HPSE facilitates eGC degradation leading to inflammation and impaired lung function after I/R injury. HPSE may be a therapeutic target to attenuate graft damage in lung transplantation.

摘要

内皮糖萼(eGC)是血管内皮上富含碳水化合物的一层,其损伤可导致内皮和器官功能障碍。肝素酶(HPSE)在细胞应激时降解 eGC,但它在器官功能障碍中的作用尚不清楚。本研究探讨了 HPSE 在肺缺血再灌注(I/R)损伤中的作用。在 B6 野生型(WT)和 HPSE 基因敲除()小鼠中使用左肺门阻断模型,在体内诱导 I/R 损伤。左肺缺血 1 小时,然后再灌注 4 小时,然后研究肺功能和 eGC 状态。将 WT 和 HPSE 小鼠的未损伤肺与 I/R 损伤肺进行比较。WT 肺在 I/R 损伤后表现出明显的功能障碍,而 HPSE 肺则没有。HPSE 的抑制或敲除通过降低基质金属蛋白酶活性,防止 I/R 损伤后的 eGC 损伤、炎症和细胞迁移。HPSE 小鼠表现出相关基因表达的代偿性调节。HPSE 促进 eGC 降解,导致 I/R 损伤后的炎症和肺功能障碍。HPSE 可能是减轻肺移植中移植物损伤的治疗靶点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c3f3/11502304/c9b37b477c0a/PHY2-12-e70113-g003.jpg

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