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生物活性钛表面:应用于牙科实践的纳米装置与真核细胞和原核细胞的相互作用

Bioactive Titanium Surfaces: Interactions of Eukaryotic and Prokaryotic Cells of Nano Devices Applied to Dental Practice.

作者信息

Cicciù Marco, Fiorillo Luca, Herford Alan Scott, Crimi Salvatore, Bianchi Alberto, D'Amico Cesare, Laino Luigi, Cervino Gabriele

机构信息

Department of Biomedical and Dental Sciences Morphological and Functional Imaging, Messina University, 98100 Messina, ME, Italy.

Department of Maxillofacial Surgery, Loma Linda University, Loma Linda 92354, CA, USA.

出版信息

Biomedicines. 2019 Feb 12;7(1):12. doi: 10.3390/biomedicines7010012.

Abstract

BACKGROUND

In recent years, many advances have been made in the fields of bioengineering and biotechnology. Many methods have been proposed for the in vitro study of anatomical structures and alloplastic structures. Many steps forward have been made in the field of prosthetics and grafts and one of the most debated problems lies in the biomimetics and biocompatibility of the materials used. The contact surfaces between alloplastic material and fabric are under study, and this has meant that the surfaces were significantly improved. To ensure a good contact surface with the cells of our body and be able to respond to an attack by a biofilm or prevent the formation, this is the true gold standard. In the dental field, the study of the surfaces of contact with the bone tissue of the implants is the most debated, starting from the first concepts of osteointegration.

METHOD

The study searched MEDLINE databases from January 2008 to November 2018. We considered all the studies that talk about nanosurface and the biological response of the latter, considering only avant-garde works in this field.

RESULTS

The ultimate aim of this study is to point out all the progress made in the field of bioengineering and biotechnologies about nanosurface. Surface studies allow you to have alloplastic materials that integrate better with our body and allow more predictable rehabilitations. Particularly in the field of dental implantology the study of surfaces has allowed us to make huge steps forward in times of rehabilitation. Overcoming this obstacle linked to the time of osseointegration, however, today the real problem seems to be linked to the "pathologies of these surfaces", or the possible infiltration, and formation of a biofilm, difficult to eliminate, being the implant surface, inert.

CONCLUSIONS

The results of the present investigation demonstrated how nanotechnologies contribute substantially to the development of new materials in the biomedical field, being able to perform a large number of tests on the surface to advance research. Thanks to 3D technology and to the reconstructions of both the anatomical structures and eventually the alloplastic structures used in rehabilitation it is possible to consider all the mechanical characteristics too. Recent published papers highlighted how the close interaction between cells and the biomaterial applied to the human body is the main objective in the final integration of the device placed to manage pathologies or for rehabilitation after a surgical tumor is removed.

摘要

背景

近年来,生物工程和生物技术领域取得了许多进展。已经提出了许多用于解剖结构和异体结构体外研究的方法。在假肢和移植物领域已经取得了许多进展,最具争议的问题之一在于所用材料的仿生学和生物相容性。异体材料与织物之间的接触表面正在研究中,这意味着表面得到了显著改善。为了确保与我们身体的细胞有良好的接触表面,并能够应对生物膜的攻击或防止其形成,这才是真正的黄金标准。在牙科领域,从骨整合的最初概念开始,与种植体骨组织接触表面的研究就是最具争议的。

方法

该研究检索了2008年1月至2018年11月的MEDLINE数据库。我们考虑了所有关于纳米表面及其生物学反应的研究,仅考虑该领域的前沿作品。

结果

本研究的最终目的是指出生物工程和生物技术领域在纳米表面方面取得的所有进展。表面研究使我们能够拥有与身体更好整合的异体材料,并实现更可预测的修复。特别是在牙种植学领域,表面研究使我们在修复时期取得了巨大进展。然而,克服与骨整合时间相关的这一障碍后,如今真正的问题似乎与“这些表面的病变”有关,即可能的渗透以及生物膜的形成,由于种植体表面是惰性的,难以消除。

结论

本研究结果表明,纳米技术对生物医学领域新材料的开发有重大贡献,能够在表面进行大量测试以推动研究。借助3D技术以及对康复中使用的解剖结构和最终异体结构的重建,也能够考虑所有机械特性。最近发表的论文强调,细胞与应用于人体的生物材料之间的紧密相互作用是放置用于治疗疾病或手术切除肿瘤后康复的装置最终整合的主要目标。

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