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AMP 激活的蛋白激酶调节糖萼损伤和低切应力反应中的巨噬细胞募集。

AMP-activated protein kinase regulates glycocalyx impairment and macrophage recruitment in response to low shear stress.

机构信息

Department of Cardiology, Nanjing First Hospital, Nanjing Medical University, Nanjing, China.

出版信息

FASEB J. 2019 Jun;33(6):7202-7212. doi: 10.1096/fj.201801869RRR. Epub 2019 Mar 12.

DOI:10.1096/fj.201801869RRR
PMID:30860864
Abstract

Low shear stress (LSS) increases degradation of the endothelial glycocalyx, leading to production of endothelial inflammation and atherosclerosis. However, the underlying mechanisms of how LSS diminishes the endothelial glycocalyx remain unclear. We showed that LSS inactivated AMPK, enhanced Na-H exchanger (NHE)1 activity, and induced glycocalyx degradation. Activation of AMPK prevented LSS-induced NHE1 activity and endothelial glycocalyx impairment. We further identified hyaluronidase 2 (HYAL2) as a mediator of endothelial glycocalyx impairment in HUVECs exposed to LSS. Inactivation of AMPK by LSS up-regulates the activity of HYAL2, which acts downstream of NHE1. We characterized a left common carotid artery partial ligation (PL) model of LSS in C57BL/6 mice. The results showed decreased expression of hyaluronan (HA) in the endothelial glycocalyx and decreased thickness of the endothelial glycocalyx in PL mice. Pharmacological activation of AMPK by ampkinone not only attenuated glycocalyx impairment due to HA degradation but also blocked vascular cell adhesion molecule 1 and intercellular adhesion molecule 1 expression increase and macrophage recruitment in the endothelia of PL mice. Our results revealed that AMPK dephosphorylation induced by LSS activates NHE1 and HYAL2 to promote HA degradation and glycocalyx injury, which may contribute to endothelial inflammatory reaction and macrophage recruitment.-Zhang, J., Kong, X., Wang, Z., Gao, X., Ge, Z., Gu, Y., Ye, P., Chao, Y., Zhu, L., Li, X., Chen, S. AMP-activated protein kinase regulates glycocalyx impairment and macrophage recruitment in response to low shear stress.

摘要

低切应力 (LSS) 会增加内皮糖萼的降解,导致内皮炎症和动脉粥样硬化的产生。然而,LSS 如何减少内皮糖萼的潜在机制尚不清楚。我们表明,LSS 使 AMPK 失活,增强 Na-H 交换器 (NHE)1 的活性,并诱导糖萼降解。AMPK 的激活可防止 LSS 诱导的 NHE1 活性和内皮糖萼损伤。我们进一步发现透明质酸酶 2 (HYAL2) 是暴露于 LSS 的 HUVECs 中内皮糖萼损伤的介体。LSS 通过 AMPK 的失活上调 HYAL2 的活性,后者作用于 NHE1 的下游。我们对 C57BL/6 小鼠的左颈总动脉部分结扎 (PL) 模型中的 LSS 进行了特征描述。结果表明,PL 小鼠内皮糖萼中的透明质酸 (HA) 表达减少,内皮糖萼厚度变薄。AMPK 的药理学激活 AMPK 通过 ampkinone 不仅减轻了由于 HA 降解导致的糖萼损伤,还阻断了 PL 小鼠内皮中血管细胞黏附分子 1 和细胞间黏附分子 1 表达的增加以及巨噬细胞募集。我们的研究结果表明,LSS 诱导的 AMPK 去磷酸化激活了 NHE1 和 HYAL2,以促进 HA 降解和糖萼损伤,这可能导致内皮炎症反应和巨噬细胞募集。

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