Al-Khateeb Amjed, Al-Hassani Emad S, Jabur Akram R
Department of Materials Engineering, University of Technology, Iraq, Baghdad.
Heliyon. 2023 Sep 4;9(9):e19594. doi: 10.1016/j.heliyon.2023.e19594. eCollection 2023 Sep.
Biofunctionalization of an implant using functional ceramics with exceptional electrical characterization, such as BaTiO and SrTiO has gained considerable attention in creating a composite coating with bio-polymer to activate metal implant surfaces for bone tissue engineering applications and, at the same time, resist bacterial infection. A Ti-Zr alloy sample was created by powder technology, and then a coating was applied using the electrospinning technique. Individually, nanopowders of ceramic compounds such as nBaTiO and nSrTiO were added to a blend of polycaprolactone and chitosan to create composite solutions that could be converted into a nanofibrous coating layer using the electrospinning technique. The samples were analyzed for their morphology, chemical composition, surface roughness, dielectric constant, and wettability. The techniques employed were SEM, EDS, FTIR, an LCR meter, and a contact angle goniometer. The samples' cytocompatibility was assessed by examining the cell viability, ALP activity, proliferation, and attachment of MC3T3-E1 osteoblast cells on both coated and uncoated sample surfaces.The bacterial resistance assays were conducted against and Streptococcus mutans. The findings demonstrate a notable enhancement in the biocompatibility of the coated specimens following a week of cellular cultivation. The composite coating containing piezoelectric BaTiO has a dielectric constant Ɛ (16) close to dry human bone at 100HZ frequency. Cell proliferation increases dramatically with time in coated samples, and the improvement approaches 125.16% for (BA1) and 111.38% for (SR1) as compared to uncoated Ti-25Zr sample. Cell viability percentage for the coated samples is compared with bare Ti-25Zr, which has an 80.52 ± 1.97% crucial increase, while (BA1) has 181.63 ± 17.87 and (SR1) 170.09 ± 18.12%. No zone of inhibition was detected in the bacterial resistance test for the uncoated sample, while the samples with composite coating show an adequate and comparable inhibitory zone. The composite nano-fiber has a strong biocompatibility, and the coating process is simple and economical, holding potential for use in orthodontic and orthopedic bone regeneration applications.
使用具有特殊电学特性的功能陶瓷(如钛酸钡和钛酸锶)对植入物进行生物功能化,在创建生物聚合物复合涂层以激活金属植入物表面用于骨组织工程应用以及同时抵抗细菌感染方面已引起了相当大的关注。通过粉末技术制备了钛锆合金样品,然后使用静电纺丝技术施加涂层。分别将纳米陶瓷化合物(如纳米钛酸钡和纳米钛酸锶)添加到聚己内酯和壳聚糖的混合物中,以制备复合溶液,该复合溶液可通过静电纺丝技术转化为纳米纤维涂层。对样品的形态、化学成分、表面粗糙度、介电常数和润湿性进行了分析。所采用的技术有扫描电子显微镜(SEM)、能谱仪(EDS)、傅里叶变换红外光谱仪(FTIR)、LCR测试仪和接触角测角仪。通过检查MC3T3-E1成骨细胞在涂覆和未涂覆样品表面上的细胞活力、碱性磷酸酶(ALP)活性、增殖和附着情况,评估了样品的细胞相容性。针对大肠杆菌和变形链球菌进行了抗菌试验。研究结果表明,经过一周的细胞培养后,涂覆样品的生物相容性有显著提高。含有压电钛酸钡的复合涂层在100HZ频率下的介电常数Ɛ(16)接近干燥的人体骨骼。与未涂覆的Ti-25Zr样品相比,涂覆样品中的细胞增殖随时间显著增加,(BA1)的改善幅度接近125.16%,(SR1)的改善幅度为111.38%。涂覆样品的细胞活力百分比与裸露的Ti-25Zr相比有至关重要的增加,Ti-25Zr为80.52±1.97%,而(BA1)为181.63±17.87%,(SR1)为170.09±18.12%。在未涂覆样品的抗菌试验中未检测到抑菌圈,而具有复合涂层的样品显示出足够且相当的抑菌圈。复合纳米纤维具有很强的生物相容性,且涂层工艺简单经济,在正畸和骨科骨再生应用中具有潜在用途。