Engoor Gimmi Guruprasad, Dewangan Vimal Kumar, Latiyan Sachin, Sampath Kumar T S, Sujatha N, Palani I A, Vasa Nilesh J
Department of Applied Mechanics and Biomedical Engineering, Indian Institute of Technology Madras, Chennai 60036, India.
Department of Metallurgical and Materials Engineering, Indian Institute of Technology Madras, Chennai 60036, India.
Biomed Mater. 2025 Feb 13;20(2). doi: 10.1088/1748-605X/adb118.
Titania (TiO) has superior biocompatibility, while zinc oxide (ZnO) is antibacterial. This investigation aimed to study the influence of TiO-ZnO composite films on enhancing the biocompatibility of stainless steel (SS). Radio-frequency magnetron sputtering (RF-MS) technique is used to synthesize TiO-ZnO composite thin films on 304-SS substrates from three sputtering targets with typical chemical compositions of 100% TiO, 90%TiO-10%ZnO, and 75%TiO-25%ZnO, mixed by their respective weight percentages. The influence of surface chemistry, morphology, and wettability of TiO-ZnO composite film on its osseointegration and antifouling characteristics was studied. The biocompatibility was assessed by protein adsorption kit, cytotoxicity assay, and cell adhesion of MG63 osteoblast cells, followed bybacterial adhesion studies. All RF-MS films displayed hydrophobicity, minimal bacterial-cell adhesion, and higher cytocompatibility than the SS. RF-MS films deposited from the 75%TiO-25%ZnO target exhibited the highest antifouling capability due to the least protein adsorption and the highest antibacterial ZnO concentration. However, increased ZnO concentration decreased MG63 cell viability. RF-MS films deposited from the 90%TiO-10%ZnO target showed the highest mammalian cell viability of ≈88% and attachment. High plasma protein adsorption caused decreased mammalian cell viability and higher bacterial adhesion on 100% TiOfilm and SS. Biocompatible and antifouling TiO-ZnO composite thin films on SS substrates offer an alternative to conventional antibiotic coatings to combat antimicrobial resistance (AMR) and biofilm-related infections.
二氧化钛(TiO)具有卓越的生物相容性,而氧化锌(ZnO)具有抗菌性。本研究旨在探讨TiO-ZnO复合薄膜对提高不锈钢(SS)生物相容性的影响。采用射频磁控溅射(RF-MS)技术,从三种溅射靶材在304-SS基底上合成TiO-ZnO复合薄膜,其典型化学组成为100%TiO、90%TiO-10%ZnO和75%TiO-25%ZnO,按各自重量百分比混合。研究了TiO-ZnO复合薄膜的表面化学、形态和润湿性对其骨整合和防污特性的影响。通过蛋白质吸附试剂盒、细胞毒性试验和MG63成骨细胞的细胞黏附来评估生物相容性,随后进行细菌黏附研究。所有RF-MS薄膜均表现出疏水性、最小的细菌细胞黏附性,且比SS具有更高的细胞相容性。由75%TiO-25%ZnO靶材沉积的RF-MS薄膜由于蛋白质吸附最少和抗菌ZnO浓度最高而表现出最高的防污能力。然而,ZnO浓度的增加会降低MG63细胞活力。由90%TiO-10%ZnO靶材沉积的RF-MS薄膜显示出最高的哺乳动物细胞活力,约为88%,且细胞附着性良好。高血浆蛋白吸附导致100%TiO薄膜和SS上的哺乳动物细胞活力下降以及细菌黏附增加。SS基底上具有生物相容性和防污性的TiO-ZnO复合薄膜为对抗抗菌耐药性(AMR)和生物膜相关感染提供了一种替代传统抗生素涂层的选择。