VADs的激光处理表面:从惰性钛到潜在的生物功能材料。

IF 5 Q1 ENGINEERING, BIOMEDICAL BME frontiers Pub Date : 2022-07-13 eCollection Date: 2022-01-01 DOI:10.34133/2022/9782562
Eduardo Bock, Wilhelm Pfleging, Dayane Tada, Erenilda Macedo, Nathalia Premazzi, Rosa Sá, Juliana Solheid, Heino Besser, Aron Andrade
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引用次数: 1

摘要

客观的心室辅助装置的激光处理表面。影响声明。这项工作具有科学影响力,因为它提出了一种在生物惰性钛中通过激光处理创造的生物功能表面。介绍心血管疾病是世界上主要的死亡原因。充血性心力衰竭是一种特别使人衰弱的心脏病。在可能的治疗方法中,心脏移植和机械循环辅助是治疗晚期严重疾病的主要方法。用于心室辅助装置的生物材料的开发仍在进行中。尽管抛光钛目前被用于多种设备,但可以通过提高其表面的生物活性来提高其性能。方法。为了在不使用可分离涂层的情况下改善钛,本工作提出了激光诱导的周期性表面结构的形成,该结构具有适合细胞粘附和新生内膜组织形成的拓扑结构。用飞秒激光对其表面进行修饰,并用成纤维细胞在体外评估细胞粘附性。后果结果表明形成了所需的拓扑结构,因为与对照组相比,细胞显示出适当的粘附性。扫描电子显微镜显示细胞的形状和表面分布具有几个积极的特征。用不同拓扑结构获得的体外结果表明,所提出的LIPSS将提供增强的细胞粘附和增殖。结论所研究的激光工艺可以在已知的生物材料中产生新的相互作用,并提高用于心室辅助装置的生物材料的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Laser-Treated Surfaces for VADs: From Inert Titanium to Potential Biofunctional Materials.

Objective. Laser-treated surfaces for ventricular assist devices. Impact Statement. This work has scientific impact since it proposes a biofunctional surface created with laser processing in bioinert titanium. Introduction. Cardiovascular diseases are the world's leading cause of death. An especially debilitating heart disease is congestive heart failure. Among the possible therapies, heart transplantation and mechanical circulatory assistance are the main treatments for its severe form at a more advanced stage. The development of biomaterials for ventricular assist devices is still being carried out. Although polished titanium is currently employed in several devices, its performance could be improved by enhancing the bioactivity of its surface. Methods. Aiming to improve the titanium without using coatings that can be detached, this work presents the formation of laser-induced periodic surface structures with a topology suitable for cell adhesion and neointimal tissue formation. The surface was modified by femtosecond laser ablation and cell adhesion was evaluated in vitro by using fibroblast cells. Results. The results indicate the formation of the desired topology, since the cells showed the appropriate adhesion compared to the control group. Scanning electron microscopy showed several positive characteristics in the cells shape and their surface distribution. The in vitro results obtained with different topologies point that the proposed LIPSS would provide enhanced cell adhesion and proliferation. Conclusion. The laser processes studied can create new interactions in biomaterials already known and improve the performance of biomaterials for use in ventricular assist devices.

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CiteScore
7.10
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审稿时长
16 weeks
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