Jeong Se-Ho, Nguyen Khanh Toan, Nguyen Manh Tuong, You Jae-Seek, Kim Byung-Hoon, Choe Han-Cheol, Ahn Sang-Gun
Department of Pathology, School of Dentistry, Chosun University, Gwangju 61452, Republic of Korea.
Department of Oral and Maxillofacial Surgery, School of Dentistry, Chosun University, Gwangju 61452, Republic of Korea.
ACS Biomater Sci Eng. 2023 Mar 13;9(3):1377-1390. doi: 10.1021/acsbiomaterials.2c01296. Epub 2023 Feb 20.
Despite numerous studies on various surface modifications on titanium and its alloys, it remains unclear what kind of titanium-based surface modifications are capable of controlling cell activity. This study aimed to understand the mechanism at the cellular and molecular levels and investigate the response of osteoblastic MC3T3-E1 cultured on the Ti-6Al-4V surface modified by plasma electrolytic oxidation (PEO) treatment. A Ti-6Al-4V surface was prepared by PEO at 180, 280, and 380 V for 3 or 10 min in an electrolyte containing Ca/P ions. Our results showed that PEO-treated Ti-6Al-4V-Ca/P surfaces enhanced the cell attachment and differentiation of MC3T3-E1 compared to the untreated Ti-6Al-4V control but did not affect cytotoxicity as shown by cell proliferation and cell death. Interestingly, on the Ti-6Al-4V-Ca/P surface treated by PEO at 280 V for 3 or 10 min, MC3T3-E1 showed a higher initial adhesion and mineralization. In addition, the alkaline phosphatase (ALP) activity significantly increased in MC3T3-E1 on the PEO-treated Ti-6Al-4V-Ca/P (280 V for 3 or 10 min). In RNA-seq analysis, the expression of dentin matrix protein 1 (DMP1), sortilin 1 (Sort1), signal-induced proliferation-associated 1 like 2 (SIPA1L2), and interferon-induced transmembrane protein 5 (IFITM5) was induced during the osteogenic differentiation of MC3T3-E1 on the PEO-treated Ti-6Al-4V-Ca/P. DMP1 and IFITM5 silencing decreased the expression of bone differentiation-related mRNAs and proteins and ALP activity in MC3T3-E1. These results suggest that the PEO-treated Ti-6Al-4V-Ca/P surface induces osteoblast differentiation by regulating the expression of DMP1 and IFITM5. Therefore, surface microstructure modification through PEO coatings with Ca/P ions could be used as a valuable method to improve biocompatibility properties of titanium alloys.
尽管针对钛及其合金的各种表面改性进行了大量研究,但何种基于钛的表面改性能够控制细胞活性仍不清楚。本研究旨在从细胞和分子水平理解其机制,并研究在经等离子体电解氧化(PEO)处理改性的Ti-6Al-4V表面培养的成骨细胞MC3T3-E1的反应。在含Ca/P离子的电解液中,通过PEO分别在180、280和380 V下处理3或10分钟制备Ti-6Al-4V表面。我们的结果表明,与未处理的Ti-6Al-4V对照相比,经PEO处理的Ti-6Al-4V-Ca/P表面增强了MC3T3-E1的细胞附着和分化,但如细胞增殖和细胞死亡所示,对细胞毒性没有影响。有趣的是,在280 V下经PEO处理3或10分钟的Ti-6Al-4V-Ca/P表面上,MC3T3-E1表现出更高的初始附着力和矿化能力。此外,在经PEO处理的Ti-6Al-4V-Ca/P(280 V,3或10分钟)上的MC3T3-E1中,碱性磷酸酶(ALP)活性显著增加。在RNA测序分析中,在经PEO处理的Ti-6Al-4V-Ca/P上MC3T3-E1的成骨分化过程中,牙本质基质蛋白1(DMP1)、sortilin 1(Sort1)、信号诱导增殖相关蛋白1样蛋白2(SIPA1L2)和干扰素诱导跨膜蛋白5(IFITM5)的表达被诱导。DMP1和IFITM5沉默降低了MC3T3-E1中骨分化相关mRNA和蛋白质的表达以及ALP活性。这些结果表明,经PEO处理的Ti-6Al-4V-Ca/P表面通过调节DMP1和IFITM5的表达诱导成骨细胞分化。因此,通过含Ca/P离子的PEO涂层进行表面微观结构改性可作为改善钛合金生物相容性的一种有价值的方法。