Shi Xingxing, Zhou Kai, Huang Fei, Wang Chen
Department of Prosthodontics, Jiangsu Key Laboratory of Oral Diseases, Affiliated Hospital of Stomatology, Nanjing Medical University, Nanjing, People's Republic of China.
Int J Nanomedicine. 2017 Aug 10;12:5781-5795. doi: 10.2147/IJN.S140179. eCollection 2017.
Nano-hydroxyapatite (nano-HAP) has been proposed as a better candidate for bone tissue engineering; however, the interactions of nano-HAP with endothelial cells are currently unclear. In this study, HAP nanoparticles (HANPs; 20 nm np20 and 80 nm np80) and micro-sized HAP particles (m-HAP; 12 μm) were employed to explore and characterize cellular internalization, subcellular distribution, effects of HANPs on endothelial cell function and underlying mechanisms using human umbilical vein endothelial cells (HUVECs) as an in vitro model. It was found that HANPs were able to accumulate in the cytoplasm, and both adhesion and uptake of the HANPs followed a function of time; compared to np80, more np20 had been uptaken at the end of the observation period. HANPs were mainly uptaken via clathrin- and caveolin-mediated endocytosis, while macropinocytosis was the main pathway for m-HAP uptake. Unexpectedly, exposure to HANPs suppressed the angiogenic ability of HUVECs in terms of cell viability, cell cycle, apoptosis response, migration and capillary-like tube formation. Strikingly, HANPs reduced the synthesis of nitric oxide (NO) in HUVECs, which was associated with the inhibition of phosphatidylinositol 3-kinase (PI3K) and phosphorylation of eNOS. These findings provide additional insights into specific biological responses as HANPs interface with endothelial cells.
纳米羟基磷灰石(nano-HAP)已被认为是骨组织工程的更佳候选材料;然而,目前纳米羟基磷灰石与内皮细胞之间的相互作用尚不清楚。在本研究中,使用人脐静脉内皮细胞(HUVECs)作为体外模型,采用羟基磷灰石纳米颗粒(HANPs;20 nm的np20和80 nm的np80)和微米级羟基磷灰石颗粒(m-HAP;12μm)来探索和表征细胞内化、亚细胞分布、HANPs对内皮细胞功能的影响及其潜在机制。研究发现,HANPs能够在细胞质中积累,其黏附与摄取均呈现时间依赖性;与np80相比,在观察期结束时np20的摄取量更多。HANPs主要通过网格蛋白和小窝蛋白介导的内吞作用被摄取,而巨胞饮作用是m-HAP摄取的主要途径。出乎意料的是,暴露于HANPs会在细胞活力、细胞周期、凋亡反应、迁移和毛细血管样管形成方面抑制HUVECs的血管生成能力。引人注目的是,HANPs减少了HUVECs中一氧化氮(NO)的合成,这与磷脂酰肌醇3激酶(PI3K)的抑制和内皮型一氧化氮合酶(eNOS)的磷酸化有关。这些发现为HANPs与内皮细胞相互作用时的特定生物学反应提供了更多见解。