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尿毒症血管钙化中的转化医学:清除活性氧可减轻对甲酚硫酸盐激活的半胱天冬酶 -1、NLRP3炎性小体以及人动脉平滑肌细胞中的类花生酸炎症。

Translational Medicine in Uremic Vascular Calcification: Scavenging ROS Attenuates p-Cresyl Sulfate-Activated Caspase-1, NLRP3 Inflammasome and Eicosanoid Inflammation in Human Arterial Smooth Muscle Cells.

作者信息

Chang Jia-Feng, Kuo Hsiao-Ling, Liu Shih-Hao, Hsieh Chih-Yu, Hsu Chih-Ping, Hung Kuo-Chin, Wang Ting-Ming, Wu Chang-Chin, Lu Kuo-Cheng, Lin Wei-Ning, Hung Chi-Feng, Ko Wen-Chin

机构信息

Division of Nephrology, Department of Internal Medicine, En Chu Kong Hospital, New Taipei City 237, Taiwan.

Division of Nephrology, Department of Internal Medicine, Taipei Medical University-Shuang Ho Hospital, New Taipei City 235, Taiwan.

出版信息

Life (Basel). 2022 May 23;12(5):769. doi: 10.3390/life12050769.

Abstract

We formerly proved that uremic vascular calcification (UVC) correlates tightly with oxidative elastic lamina (EL) injury and two cell fates (apoptosis and osteocytic conversion) in smooth muscle cells (SMC) of chronic kidney disease (CKD) patients and eliminating p-cresyl sulfate (PCS)-activated intracellular ROS ameliorates the MAPK signaling pathway in a human arterial SMC (HASMC) model. Nonetheless, whether ROS scavenger attenuates PCS-triggered inflammasome activation and eicosanoid inflammation in the UVC process remains unknown. Patients with lower extremity amputation were categorized into CKD and normal control group according to renal function. We used immunohistochemistry stain to analyze UVC in arterial specimens, including oxidative injury (8-hydroxy-2'-deoxyguanosine (8-OHdG) and internal EL disruption), cytosolic phospholipase A2 (cPLA2), cyclooxygenase 2 (COX2), interleukin-1 beta (IL-1β), caspase-1 and NLRP3. To simulate the patho-mechanism of human UVC, the therapeutic effects of ROS scavenger on PCS-triggered inflammatory pathways was explored in a HASMC model. We found CKD patients had higher circulating levels of PCS and an increase in medial arterial calcification than the control group. In CKD arteries, the severity of UVC corresponded with expressions of oxidative EL disruption and 8-OHdG. Furthermore, coupling expressions of cPLA2 and COX2 were accentuated in CKD arteries, indicative of eicosanoid inflammation. Notably, tissue expressions of IL-1β, caspase-1 and NLRP3 were enhanced in parallel with UVC severity, indicative of inflammasome activation. From bedside to bench, ROS scavenger attenuates PCS-activated expressions of cPLA2/COX2, pro-caspase-1 and NLRP3 in the HASMC model. UVC as an inevitable outcome is predictive of death in CKD patients. Nonetheless, UVC remain pharmacoresistant despite the evolution of treatment for mineral-parathyroid hormone-vitamin D axis. Beyond the mineral dysregulation, the stimulation of pro-oxidant PCS alone results in eicosanoid inflammation and inflammasome activation. Concerning the key role of Caspase-1 in pyroptosis, cell fates of HASMC in uremic milieu are not limited to apoptosis and osteogenesis. In view of this, reducing ROS and PCS may act as a therapeutic strategy for UVC-related cardiovascular events in CKD patients.

摘要

我们之前证明,在慢性肾脏病(CKD)患者的平滑肌细胞(SMC)中,尿毒症血管钙化(UVC)与氧化弹性膜(EL)损伤以及两种细胞命运(凋亡和骨细胞转化)密切相关,并且在人动脉SMC(HASMC)模型中,消除对甲酚硫酸盐(PCS)激活的细胞内活性氧(ROS)可改善丝裂原活化蛋白激酶(MAPK)信号通路。尽管如此,ROS清除剂是否能减轻UVC过程中PCS触发的炎性小体激活和类花生酸炎症仍不清楚。将下肢截肢患者根据肾功能分为CKD组和正常对照组。我们使用免疫组织化学染色分析动脉标本中的UVC,包括氧化损伤(8-羟基-2'-脱氧鸟苷(8-OHdG)和内部EL破坏)、胞质磷脂酶A2(cPLA2)、环氧化酶2(COX2)、白细胞介素-1β(IL-1β)、半胱天冬酶-1(caspase-1)和NLRP3。为了模拟人类UVC的病理机制,在HASMC模型中探讨了ROS清除剂对PCS触发的炎症途径的治疗作用。我们发现CKD患者的PCS循环水平高于对照组,且其动脉中膜钙化增加。在CKD动脉中,UVC的严重程度与氧化EL破坏和8-OHdG的表达相对应。此外,CKD动脉中cPLA2和COX2的联合表达增强,表明类花生酸炎症。值得注意的是,IL-1β、caspase-1和NLRP3的组织表达与UVC严重程度平行增加,表明炎性小体激活。从临床到实验台,ROS清除剂可减轻HASMC模型中PCS激活的cPLA2/COX2、前体半胱天冬酶-1和NLRP3的表达。UVC作为一个不可避免的结果可预测CKD患者的死亡。尽管针对矿物质-甲状旁腺激素-维生素D轴的治疗有所进展,但UVC仍然具有药物抵抗性。除了矿物质失调外,仅促氧化剂PCS的刺激就会导致类花生酸炎症和炎性小体激活。鉴于半胱天冬酶-1在焦亡中的关键作用,尿毒症环境中HASMC的细胞命运不仅限于凋亡和成骨。有鉴于此,降低ROS和PCS可能作为CKD患者UVC相关心血管事件的治疗策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4976/9147867/29f689047778/life-12-00769-g001.jpg

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