The role of 6-phosphogluconate dehydrogenase in vascular smooth muscle cell phenotypic switching and angioplasty-induced intimal hyperplasia

Q3 Medicine JVS-vascular science Pub Date : 2024-01-01 DOI:10.1016/j.jvssci.2024.100214
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引用次数: 0

Abstract

Background

Restenosis poses a significant challenge for individuals afflicted with peripheral artery diseases, often leading to considerable morbidity and necessitating repeated interventions. The primary culprit behind the pathogenesis of restenosis is intimal hyperplasia (IH), in which the hyperproliferative and migratory vascular smooth muscle cell (VSMC) accumulate excessively in the tunica intima. 6-Phosphogluconate dehydrogenase (6PGD), sometimes referred to as PGD, is one of the critical enzymes in pentose phosphate pathway (PPP). In this study, we sought to probe whether 6PGD is aberrantly regulated in IH and contributes to VSMC phenotypic switching.

Methods

We used clinical specimens of diseased human coronary arteries with IH lesions and observed robust upregulation of 6PGD at protein level in both the medial and intimal layers in comparison with healthy arterial segments.

Results

6PGD activity and protein expression were profoundly stimulated upon platelet-derived growth factor-induced VSMC phenotypic switching. Using gain-of-function (dCas9-mediated transcriptional activation) and loss-of-function (small interfering RNA-mediated) silencing, we were able to demonstrate the pathogenic role of 6PGD in driving VSMC hyperproliferation, migration, dedifferentiation, and inflammation. Finally, we conducted a rat model of balloon angioplasty in the common carotid artery, with Pluronic hydrogel-assisted perivascular delivery of Physcion, a selective 6PGD inhibitor with poor systemic bioavailability, and observed effective mitigation of IH.

Conclusions

We contend that aberrant 6PGD expression and activity—indicative of a metabolic shift toward pentose phosphate pathway—could serve as a new disease-driving mechanism and, hence, an actionable target for the development of effective new therapies for IH and restenosis after endovascular interventions.

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6- 磷酸葡萄糖酸脱氢酶在血管平滑肌细胞表型转换和血管成形术诱导的内膜增生中的作用
背景再狭窄是外周动脉疾病患者面临的一个重大挑战,通常会导致相当高的发病率,并需要反复进行干预。再狭窄发病机制的罪魁祸首是内膜增生(IH),在这种情况下,过度增殖和移行的血管平滑肌细胞(VSMC)在内膜中过度聚集。6-磷酸葡萄糖酸脱氢酶(6PGD),有时也称为 PGD,是磷酸戊糖途径(PPP)的关键酶之一。本研究试图探究 6PGD 是否在 IH 中受到异常调控并导致 VSMC 表型转换。结果 6PGD 的活性和蛋白表达在血小板衍生生长因子诱导的 VSMC 表型转换时受到显著刺激。利用功能获得(dCas9 介导的转录激活)和功能丧失(小干扰 RNA 介导的)沉默,我们能够证明 6PGD 在驱动 VSMC 过度增殖、迁移、去分化和炎症中的致病作用。最后,我们在大鼠颈总动脉中进行了球囊血管成形术模型,并在 Pluronic 水凝胶辅助下在血管周围输送 Physcion(一种全身生物利用度较低的选择性 6PGD 抑制剂),观察到 IH 得到了有效缓解。结论我们认为,6PGD 的异常表达和活性--表明新陈代谢转向磷酸戊糖途径--可作为一种新的疾病驱动机制,从而成为开发治疗 IH 和血管内介入术后再狭窄的有效新疗法的可行靶点。
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4.20
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0.00%
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审稿时长
28 weeks
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