Calreticulin attenuated microwave radiation-induced human microvascular endothelial cell injury through promoting actin acetylation and polymerization.

Cell Stress and Chaperones Pub Date : 2017-01-01 Epub Date: 2016-11-04 DOI:10.1007/s12192-016-0745-x
Feifei Xu, You Wang, Tianqi Tao, Dandan Song, Xiuhua Liu
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Abstract

Recent work reveals that actin acetylation modification has been linked to different normal and disease processes and the effects associated with metabolic and environmental stressors. Herein, we highlight the effects of calreticulin on actin acetylation and cell injury induced by microwave radiation in human microvascular endothelial cell (HMEC). HMEC injury was induced by high-power microwave of different power density (10, 30, 60, 100 mW/cm2, for 6 min) with or without exogenous recombinant calreticulin. The cell injury was assessed by lactate dehydrogenase (LDH) activity and Cell Counting Kit-8 in culture medium, migration ability, intercellular junction, and cytoskeleton staining in HMEC. Western blotting analysis was used to detected calreticulin expression in cytosol and nucleus and acetylation of globular actin (G-actin). We found that HMEC injury was induced by microwave radiation in a dose-dependent manner. Pretreatment HMEC with calreticulin suppressed microwave radiation-induced LDH leakage and increased cell viability and improved microwave radiation-induced decrease in migration, intercellular junction, and cytoskeleton. Meanwhile, pretreatment HMEC with exogenous calreticulin upregulated the histone acetyltransferase activity and the acetylation level of G-actin and increased the fibrous actin (F-actin)/G-actin ratio. We conclude that exogenous calreticulin protects HMEC against microwave radiation-induced injury through promoting actin acetylation and polymerization.

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钙网蛋白通过促进肌动蛋白乙酰化和聚合减轻微波辐射诱导的人微血管内皮细胞损伤
最近的研究发现,肌动蛋白乙酰化修饰与不同的正常和疾病过程以及与代谢和环境压力相关的影响有关。在此,我们重点研究了钙网蛋白对肌动蛋白乙酰化和微波辐射诱导的人微血管内皮细胞(HMEC)细胞损伤的影响。用不同功率密度的高功率微波(10、30、60、100 mW/cm2,持续 6 分钟)诱导人微血管内皮细胞,同时加入或不加入外源重组钙网蛋白。细胞损伤通过培养液中乳酸脱氢酶(LDH)活性和细胞计数试剂盒-8、HMEC 的迁移能力、细胞间连接和细胞骨架染色进行评估。利用 Western 印迹分析检测了细胞膜和细胞核中钙网蛋白的表达以及球状肌动蛋白(G-actin)的乙酰化。我们发现微波辐射对 HMEC 的损伤具有剂量依赖性。用钙网蛋白预处理 HMEC 可抑制微波辐射诱导的 LDH 泄漏,提高细胞活力,改善微波辐射诱导的迁移、细胞间连接和细胞骨架的下降。同时,用外源性钙网蛋白预处理 HMEC 可上调组蛋白乙酰转移酶活性和 G-actin 的乙酰化水平,并提高纤维肌动蛋白(F-actin)/G-actin 比值。我们的结论是,外源性钙调蛋白通过促进肌动蛋白乙酰化和聚合,保护 HMEC 免受微波辐射诱导的损伤。
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