School of Integrative Medicine, Tianjin University of Traditional Chinese Medicine, Tianjin, 301617, China; Department of Pathogenic Biology and Immunology, Logistics College of Chinese People's Armed Police Forces, Tianjin, 300309, China.
Department of Pathogenic Biology and Immunology, Logistics College of Chinese People's Armed Police Forces, Tianjin, 300309, China.
Eur J Pharmacol. 2020 Oct 5;884:173394. doi: 10.1016/j.ejphar.2020.173394. Epub 2020 Jul 27.
Angiogenesis is essential for bone formation during skeletal development. HIF-1α and the HIF-responsive gene VEGF (vascular endothelial growth factor) are reported to be a key mechanism for coupling osteogenesis and angiogenesis. Salidroside (SAL), a major biologically active compound of Rhodiola rosea L., possesses diverse pharmacological effects. However, whether SAL can protect against bone loss via the HIF-1α/VEGF pathway, specifically by inducing angiogenesis-osteogenesis coupling in vivo, remains unknown. Therefore, in the present study, we employed primary human umbilical vein endothelial cells (HUVECs) and the permanent EA.hy926 human endothelial cell line to determine the cellular and molecular effects of SAL on vascular endothelial cells and the HIF-1α-VEGF signalling pathway in the coupling of angiogenesis-osteogenesis. The in vitro study revealed that the HUVECs and EA.hy926 cells treated with conditioned medium from osteoblast cells (MG-63 cells) treated with SAL or treated directly with SAL showed enhanced proliferation, migration and capillary structure formation. However, supplementation with an anti-VEGF antibody during the treatment of endothelial cells (ECs) significantly reversed the pro-angiogenic effect of SAL. Moreover, SAL upregulated HIF-1α expression and increased its transcriptional activity, consequently upregulating VEGF expression at the mRNA and protein levels. In addition, our in vivo analysis demonstrated that SAL can stimulate endothelial sprouting from metatarsal bones. Thus, our mechanistic study demonstrated that the pro-angiogenic effects of SAL involve HIF-1α-VEGF signalling by coordinating the coupling of angiogenesis-osteogenesis in the bone environment. Therefore, we have discovered an ideal molecule that simultaneously enhances angiogenesis and osteogenesis and thereby accelerates bone healing.
血管生成对于骨骼发育过程中的骨形成至关重要。已有研究报道,缺氧诱导因子-1α(HIF-1α)及其下游靶基因血管内皮生长因子(VEGF)是成骨和血管生成偶联的关键机制。红景天苷(SAL)是红景天的主要生物活性化合物,具有多种药理作用。然而,SAL 是否可以通过 HIF-1α/VEGF 通路,特别是通过在体内诱导血管生成-成骨偶联来保护骨丢失,目前尚不清楚。因此,在本研究中,我们使用原代人脐静脉内皮细胞(HUVECs)和永生化 EA.hy926 人内皮细胞系,确定了 SAL 对血管内皮细胞的细胞和分子作用,以及 HIF-1α-VEGF 信号通路在血管生成-成骨偶联中的作用。体外研究表明,用 SAL 处理的成骨细胞(MG-63 细胞)条件培养基或直接用 SAL 处理的 HUVECs 和 EA.hy926 细胞,其增殖、迁移和毛细血管结构形成能力增强。然而,在处理内皮细胞(ECs)时添加抗 VEGF 抗体,可显著逆转 SAL 的促血管生成作用。此外,SAL 上调了 HIF-1α 的表达并增加了其转录活性,从而增加了 VEGF 在 mRNA 和蛋白水平的表达。此外,我们的体内分析表明,SAL 可刺激跖骨中内皮细胞的出芽。因此,我们的机制研究表明,SAL 的促血管生成作用涉及 HIF-1α-VEGF 信号通路,通过协调血管生成-成骨偶联在骨环境中的作用。因此,我们发现了一种理想的分子,它可以同时增强血管生成和骨生成,从而加速骨愈合。