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Krüppel 样因子 15 是旋转力驱动压力下足细胞纤维化的关键抑制因子。

Krüppel-like factor 15 is a key suppressor of podocyte fibrosis under rotational force-driven pressure.

机构信息

Department of Internal Medicine, Hanyang University Guri Hospital, Republic of Korea.

Department of Internal Medicine, Seoul National University Hospital, Seoul, Republic of Korea.

出版信息

Exp Cell Res. 2020 Jan 1;386(1):111706. doi: 10.1016/j.yexcr.2019.111706. Epub 2019 Nov 4.

Abstract

Krüppel-like factor 15 (KLF15) is a well-known transcription factor associated with podocyte injury and fibrosis. Recently, hypertensive nephropathy was discovered to be closely related to podocyte injury and fibrosis. However, methods to stimulate hypertension in vitro are lacking. Here, we constructed an in vitro model mimicking hypertension using a rotational force device to identify the role of KLF15 in fibrosis due to mechanically induced hypertensive injury. First, we found that KLF15 expression was decreased in patients with hypertensive nephropathy. Then, an in vitro study of hypertension due to rotational force was conducted, and an increase in fibrosis markers and decrease in KLF15 levels were determined after application of 4 mmHg pressure in primary cultured human podocytes. KLF15 and tight junction protein levels increased with retinoic acid treatment. siRNA-mediated inhibition of KLF15 exacerbated pressure-induced fibrosis injury, and KLF15 expression after treatment with angiotensin II was similar to that observed after treatment with the blood pressure modeling device. Furthermore, the reduced KLF15 levels after mechanical pressure application were restored after the administration of an antihypertensive drug. KLF15 expression was also low in vivo. We confirmed the protective role of KLF15 in fibrosis using a mechanically induced in vitro model of hypertensive injury.

摘要

Krüppel 样因子 15(KLF15)是一种与足细胞损伤和纤维化相关的已知转录因子。最近,高血压肾病被发现与足细胞损伤和纤维化密切相关。然而,缺乏体外刺激高血压的方法。在这里,我们使用旋转力装置构建了一种模拟高血压的体外模型,以确定 KLF15 在机械诱导的高血压损伤引起的纤维化中的作用。首先,我们发现高血压肾病患者的 KLF15 表达降低。然后,进行了体外旋转力引起的高血压研究,在原代培养的人足细胞中施加 4mmHg 压力后,确定纤维化标志物增加和 KLF15 水平降低。维甲酸处理后 KLF15 和紧密连接蛋白水平增加。siRNA 介导的 KLF15 抑制加重了压力诱导的纤维化损伤,血管紧张素 II 处理后的 KLF15 表达与血压建模装置处理后的表达相似。此外,机械压力施加后降低的 KLF15 水平在用降压药物治疗后得到恢复。KLF15 在体内的表达也较低。我们通过使用机械诱导的高血压损伤体外模型证实了 KLF15 在纤维化中的保护作用。

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