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3D 打印椎间融合器植入材料的生物学改性研究进展。

Research progress on the biological modifications of implant materials in 3D printed intervertebral fusion cages.

机构信息

Department of Spine Surgery, The First Affiliated Hospital, Hengyang Medical School, University of South China, 69 Chuanshan Road, Hengyang, Hunan, 421001, China.

Plastic and Cosmetic Surgery, Hunan Want Want Hospital, Changsha, China.

出版信息

J Mater Sci Mater Med. 2021 Dec 23;33(1):2. doi: 10.1007/s10856-021-06609-4.

Abstract

Anterior spine decompression and reconstruction with bone grafts and fusion is a routine spinal surgery. The intervertebral fusion cage can maintain intervertebral height and provide a bone graft window. Titanium fusion cages are the most widely used metal material in spinal clinical applications. However, there is a certain incidence of complications in clinical follow-ups, such as pseudoarticulation formation and implant displacement due to nonfusion of bone grafts in the cage. With the deepening research on metal materials, the properties of these materials have been developed from being biologically inert to having biological activity and biological functionalization, promoting adhesion, cell differentiation, and bone fusion. In addition, 3D printing, thin-film, active biological material, and 4D bioprinting technology are also being used in the biofunctionalization and intelligent advanced manufacturing processes of implant devices in the spine. This review focuses on the biofunctionalization of implant materials in 3D printed intervertebral fusion cages. The surface modifications of implant materials in metal endoscopy, material biocompatibility, and bioactive functionalizationare summarized. Furthermore, the prospects and challenges of the biofunctionalization of implant materials in spinal surgery are discussed. Fig.a.b.c.d.e.f.g As a pre-selected image for the cover, I really look forward to being selected. Special thanks to you for your comments.

摘要

前路脊柱减压融合术是一种常规的脊柱手术。椎间融合 cage 可以维持椎间高度,并提供植骨窗。钛合金融合 cage 是脊柱临床应用中最广泛使用的金属材料。然而,在临床随访中会出现一定的并发症,如由于 cage 内植骨未融合导致假性关节形成和植入物移位。随着对金属材料研究的深入,这些材料的性能已经从生物惰性发展到具有生物活性和生物功能化,促进了黏附、细胞分化和骨融合。此外,3D 打印、薄膜、活性生物材料和 4D 生物打印技术也正在用于脊柱植入物装置的生物功能化和智能先进制造过程中。本综述重点介绍了 3D 打印椎间融合 cage 中植入材料的生物功能化。总结了金属内镜植入材料的表面改性、材料生物相容性和生物活性功能化。此外,还讨论了脊柱外科中植入材料生物功能化的前景和挑战。图。a.b.c.d.e.f.g 作为封面的预选图像,我非常期待被选中。特别感谢您的评论。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/df88/8702412/ecfcb8f4017a/10856_2021_6609_Figa_HTML.jpg

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