Agnes Rogala, Daria Zaytseva-Zotova, Enrique Oreja, Alejandro Barrantes and Hanna Tiainen
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Time-lapse imaging was employed to assess cell area and motility, while immunofluorescence microscopy was used to examine cell morphology and focal adhesion formation. Our results showed that in serum-free medium, fibroblasts demonstrated enhanced and faster adhesion to TA coatings compared to uncoated titanium. Increasing the serum concentration reduced cell adhesion to nanocoatings, resulting in nearly complete inhibition at 10% FBS. This inhibition was not observed for uncoated titanium at 10% FBS, although cell adhesion was delayed and progressed slower compared to serum-free conditions. In addition, 1% FBS dramatically reduced cell adhesion on uncoated titanium. We revealed a positive relationship between changes in dissipation and changes in cell spreading area, and a negative relationship between dissipation and cell motility. In conclusion, our study demonstrated that serum decreases fibroblasts interaction with surfaces coated with TA in a concentration dependent manner. 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This inhibition was not observed for uncoated titanium at 10% FBS, although cell adhesion was delayed and progressed slower compared to serum-free conditions. In addition, 1% FBS dramatically reduced cell adhesion on uncoated titanium. We revealed a positive relationship between changes in dissipation and changes in cell spreading area, and a negative relationship between dissipation and cell motility. In conclusion, our study demonstrated that serum decreases fibroblasts interaction with surfaces coated with TA in a concentration dependent manner. 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引用次数: 0
摘要
最近有人提出,以植物多酚为基础的纳米涂层是一种有效的种植体表面改良策略,可增强宿主细胞附着力并减少细菌定植。本研究旨在探讨血清蛋白如何影响人牙龈成纤维细胞在涂有单宁酸(TA)的钛表面上的早期粘附动力学。在钛上形成硅酸盐-TA 纳米涂层,并在添加 0、0.1、1 或 10% FBS 的培养基中预处理 1 小时。使用带耗散的石英晶体微天平(QCM-D)研究了成纤维细胞的粘附动态。延时成像用于评估细胞面积和运动性,免疫荧光显微镜用于检查细胞形态和病灶粘附的形成。我们的研究结果表明,在无血清培养基中,与未涂层的钛相比,成纤维细胞对 TA 涂层的粘附更强、更快。血清浓度的增加会降低细胞对纳米涂层的粘附力,当血清中的FBS浓度为10%时,细胞对纳米涂层的粘附力几乎完全被抑制。虽然与无血清条件相比,细胞粘附延迟且进展缓慢,但在 10% FBS 条件下,未涂层钛未观察到这种抑制作用。此外,1% FBS 能显著减少细胞在未涂层钛上的粘附。我们发现耗散度的变化与细胞铺展面积的变化呈正相关,而耗散度与细胞运动性呈负相关。总之,我们的研究表明,血清会以浓度依赖的方式降低成纤维细胞与涂有钛涂层的表面的相互作用。这表明,控制血清浓度可用于调节或潜在地防止成纤维细胞粘附到 TA 涂层钛表面。
Combining QCM-D with live-cell imaging reveals the impact of serum proteins on the dynamics of fibroblast adhesion on tannic acid-functionalised surfaces†
Nanocoatings based on plant polyphenols have been recently suggested as a potent strategy for modification of implant surfaces for enhancing host cell attachment and reducing bacterial colonisation. In this study we aimed to investigate how serum proteins impact the early adhesion dynamics of human gingival fibroblasts onto titanium surfaces coated with tannic acid (TA). Silicate-TA nanocoatings were formed on titanium and pre-conditioned in medium supplemented with 0, 0.1, 1 or 10% FBS for 1 hour. Dynamics of fibroblasts adhesion was studied using quartz crystal microbalance with dissipation (QCM-D). Time-lapse imaging was employed to assess cell area and motility, while immunofluorescence microscopy was used to examine cell morphology and focal adhesion formation. Our results showed that in serum-free medium, fibroblasts demonstrated enhanced and faster adhesion to TA coatings compared to uncoated titanium. Increasing the serum concentration reduced cell adhesion to nanocoatings, resulting in nearly complete inhibition at 10% FBS. This inhibition was not observed for uncoated titanium at 10% FBS, although cell adhesion was delayed and progressed slower compared to serum-free conditions. In addition, 1% FBS dramatically reduced cell adhesion on uncoated titanium. We revealed a positive relationship between changes in dissipation and changes in cell spreading area, and a negative relationship between dissipation and cell motility. In conclusion, our study demonstrated that serum decreases fibroblasts interaction with surfaces coated with TA in a concentration dependent manner. This suggests that controlling serum concentration can be used to regulate or potentially prevent fibroblasts adhesion onto TA-coated titanium surfaces.
期刊介绍:
Biomaterials Science is an international high impact journal exploring the science of biomaterials and their translation towards clinical use. Its scope encompasses new concepts in biomaterials design, studies into the interaction of biomaterials with the body, and the use of materials to answer fundamental biological questions.