Sustained tenascin-C expression drives neointimal hyperplasia and promotes aortocaval fistula failure.

IF 4.1 2区 医学 Q1 CARDIAC & CARDIOVASCULAR SYSTEMS
Luis A Gonzalez, Weichang Zhang, Hualong Bai, Ryosuke Taniguchi, Abhay B Ramachandra, Daniel G Jovin, Yuichi Ohashi, Mytien Nguyen, Carly Thaxton, Bogdan Yatsula, Roberto I Vazquez-Padron, Jay D Humphrey, Kathleen A Martin, Themis R Kyriakides, Alan Dardik
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引用次数: 0

Abstract

End-stage kidney disease (ESKD) impacts over 740,000 individuals in the United States, with many patients relying on arteriovenous fistulae (AVF) for hemodialysis due to superior patency and reduced infections. However, AVF patency is reduced by thrombosis and neointimal hyperplasia, yielding a 1-yr patency of only 40%-50%. We hypothesized that tenascin-C (TNC), a regulator of inflammation and immune responses after injury, also regulates venous remodeling during AVF maturation. AVF were created in wild-type (WT) and Tnc knockout (Tnc-/-) mice, and proteomic analyses were conducted to identify protein changes between sham and AVF WT tissue. Immunofluorescence and Western blot assays compared venous tissue from WT and Tnc-/- mice. In vitro studies using human umbilical vein endothelial cells and human umbilical vein smooth muscle cells examined TNC-siRNA effects on thrombomodulin (THBD) and NF-κB. Macrophages from WT and Tnc-/- mice were assessed for anti-inflammatory phenotype polarization and tissue factor expression. TNC expression was spatially and temporally regulated in WT mice with AVF, and TNC colocalized with matrix remodeling but not with THBD expression; TNC expression was downregulated in patent AVF but sustained in occluded AVF, both in WT mice and human AVF specimens. Tnc-/- mice had reduced AVF patency, less wall thickening, and increased thrombosis, with increased THBD expression. In vitro, TNC-siRNA increased THBD and reduced NF-κB activation. Macrophages from Tnc-/- mice showed increased anti-inflammatory macrophage polarization and tissue factor expression, facilitating thrombosis. Sustained TNC expression drives neointimal hyperplasia and AVF failure by promoting a prothrombotic, inflammatory microenvironment. Targeting TNC pathways may enhance AVF patency and improve dialysis outcomes.NEW & NOTEWORTHY This study identifies Tenascin-C (TNC) as a key regulator of arteriovenous fistula (AVF) patency. TNC is spatially and temporally regulated, driving neointimal hyperplasia and thrombosis by promoting a prothrombotic, inflammatory microenvironment. In Tnc-/- mice, reduced TNC expression increased thrombomodulin and anti-inflammatory macrophage polarization but impaired wall thickening and AVF patency. These findings link sustained TNC expression to AVF failure and suggest that targeting TNC pathways could enhance AVF outcomes in patients requiring hemodialysis.

tenascin-C的持续表达驱动内膜增生,促进主动脉腔静脉瘘失败。
终末期肾脏疾病(ESKD)在美国影响了超过74万人,许多患者依靠动静脉瘘(AVF)进行血液透析,因为其通畅性好,感染减少。然而,血栓形成和新生内膜增生会降低AVF的通畅度,1年的通畅度仅为40%-50%。我们假设tenascin-C (TNC)是损伤后炎症和免疫反应的调节因子,也调节AVF成熟过程中的静脉重塑。在野生型(WT)和Tnc敲除(Tnc-/-)小鼠中建立AVF,并进行蛋白质组学分析,以确定sham和AVF WT组织之间的蛋白质变化。免疫荧光和Western blot比较了WT和Tnc-/-小鼠的静脉组织。利用人脐静脉内皮细胞和人脐静脉平滑肌细胞进行体外实验,检测TNC-siRNA对血栓调节素(THBD)和NF-κB的影响。对WT和Tnc-/-小鼠巨噬细胞的抗炎表型极化和组织因子表达进行评估。AVF对WT小鼠的TNC表达有空间和时间上的调节,并且TNC与基质重塑共定位,而不与THBD表达共定位;在WT小鼠和人AVF标本中,未封闭AVF中TNC表达下调,而闭塞AVF中TNC表达持续。Tnc-/-小鼠AVF通畅降低,壁增厚减少,血栓形成增加,THBD表达增加。在体外,TNC-siRNA增加THBD,降低NF-κB活化。Tnc-/-小鼠巨噬细胞显示抗炎巨噬细胞极化和组织因子表达增加,促进血栓形成。持续的TNC表达通过促进血栓形成、炎症微环境驱动内膜增生和AVF衰竭。靶向TNC通路可能增强AVF通畅并改善透析结果。这项研究确定Tenascin-C (TNC)是动静脉瘘(AVF)通畅的关键调节因子。TNC在空间和时间上受到调控,通过促进血栓形成、炎症微环境来驱动内膜增生和血栓形成。在Tnc-/-小鼠中,Tnc表达降低可增加血栓调节素和抗炎巨噬细胞极化,但会损害壁增厚和AVF通畅。这些发现将持续的TNC表达与AVF失败联系起来,并表明靶向TNC途径可以改善需要血液透析的患者的AVF结果。
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来源期刊
CiteScore
9.60
自引率
10.40%
发文量
202
审稿时长
2-4 weeks
期刊介绍: The American Journal of Physiology-Heart and Circulatory Physiology publishes original investigations, reviews and perspectives on the physiology of the heart, vasculature, and lymphatics. These articles include experimental and theoretical studies of cardiovascular function at all levels of organization ranging from the intact and integrative animal and organ function to the cellular, subcellular, and molecular levels. The journal embraces new descriptions of these functions and their control systems, as well as their basis in biochemistry, biophysics, genetics, and cell biology. Preference is given to research that provides significant new mechanistic physiological insights that determine the performance of the normal and abnormal heart and circulation.
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