Ex vivo Lung Perfusion Enhances Donor Lung Preservation in Mice via Hippo Signaling Activation.

IF 5.3 2区 医学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Renhui Huang, Zhiwang Zhao, Sijia Liu, Mei Li, Ying Wang, Yunfan Hu, Tiantao Sun, Zhiyun Duan, Changhao Ren, Xinyu Yang, Shaoyuan Zhang, Tian Jiang, Jun Yin, Lijie Tan
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引用次数: 0

Abstract

Ex vivo lung perfusion (EVLP) is a promising technique that allows organ preservation and repair, while the molecular mechanisms remain unknown. This study aimed to establish a translational murine EVLP model and to unveil the molecular mechanisms responsible for EVLP beneficial effects. We developed a murine EVLP system with four experimental groups: (1) without ischemia or EVLP (control), (2) 45 min EVLP followed by 135 min cold ischemia (EVLP-CI), (3) 135 min cold ischemia followed by 45 min EVLP (CI-EVLP), and (4) 180 min cold ischemia (CI). Following 3-hour preservation, changes in lung weight (Δweight) and lung vascular filtration coefficient (Kf) were measured. Complementary in vitro studies utilized human pulmonary microvascular endothelial cells under simulated perfusion conditions. Compared to CI group, both EVLP intervention groups exhibited superior preservation outcomes, with an attenuated Δweight and Kf, and histological and microscopic evidence of lung damage. Proteomic profiling on mouse lungs revealed that EVLP regulated the Hippo signaling in response to CI. Pharmacological inhibition (TDI-011536 or Lats-IN-1) or genetic deletion of Yap1 or Lats1 specifically in endothelial cells (Yap1EN-KO or Lats1EN-KO) abrogated EVLP-mediated endothelial barrier protection. EVLP efficacy in lung preservation was enhanced by Yap1 phosphorylation activation using AICAR or metformin. In vitro perfusion models recapitulated these findings, where barrier function was disrupted with Yap1 phosphorylation inhibitor, with a decreased cytoplasmic localization of Yap1. Our findings establish the functional murine EVLP model and first demonstrate that mechanical perfusion preserves donor lung viability through Hippo signaling-mediated endothelial barrier stabilization.

体外肺灌注通过Hippo信号激活增强小鼠供体肺保存。
体外肺灌注(EVLP)是一种很有前途的器官保存和修复技术,但其分子机制尚不清楚。本研究旨在建立小鼠EVLP翻译模型,揭示EVLP有益作用的分子机制。我们建立了小鼠EVLP系统,分为4个实验组:(1)无缺血或EVLP(对照组),(2)45 min EVLP后135 min冷缺血(EVLP-CI), (3) 135 min冷缺血后45 min EVLP (CI-EVLP), (4) 180 min冷缺血(CI)。保存3小时后,测量肺重量(Δweight)和肺血管滤过系数(Kf)的变化。补充的体外研究利用模拟灌注条件下的人肺微血管内皮细胞。与CI组相比,两个EVLP干预组都表现出更好的保存结果,Δweight和Kf减弱,组织学和显微镜证据显示肺损伤。小鼠肺的蛋白质组学分析显示,EVLP调节Hippo信号响应CI。内皮细胞中Yap1或Lats1特异性的基因缺失(Yap1EN-KO或Lats1EN-KO)的药理抑制(TDI-011536或Lats-IN-1)或基因缺失可取消evlp介导的内皮屏障保护。使用AICAR或二甲双胍激活Yap1磷酸化后,EVLP的肺保护效果增强。体外灌注模型重现了这些发现,其中屏障功能被Yap1磷酸化抑制剂破坏,Yap1的细胞质定位降低。我们的研究结果建立了功能性小鼠EVLP模型,并首次证明机械灌注通过Hippo信号介导的内皮屏障稳定来保持供体肺活力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
11.20
自引率
3.10%
发文量
370
审稿时长
3-8 weeks
期刊介绍: The American Journal of Respiratory Cell and Molecular Biology publishes papers that report significant and original observations in the area of pulmonary biology. The focus of the Journal includes, but is not limited to, cellular, biochemical, molecular, developmental, genetic, and immunologic studies of lung cells and molecules.
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