Impact of Laser Structuring on Medical-Grade Titanium: Surface Characterization and In Vitro Evaluation of Osteoblast Attachment

被引:8
作者
Borcherding, Kai [1 ]
Marx, Dennis [1 ]
Gaetjen, Linda [1 ]
Specht, Uwe [1 ]
Salz, Dirk [1 ]
Thiel, Karsten [1 ]
Wildemann, Britt [2 ,3 ,4 ,5 ,6 ]
Grunwald, Ingo [7 ]
机构
[1] Fraunhofer Inst Mfg Technol & Adv Mat IFAM, Dept Adhes Bonding Technol & Surfaces, D-28359 Bremen, Germany
[2] Charite Univ Med Berlin, BIH Ctr Regenerat Therapies, Julius Wolff Inst, D-13353 Berlin, Germany
[3] Free Univ Berlin, D-13353 Berlin, Germany
[4] Humboldt Univ, D-13353 Berlin, Germany
[5] Berlin Inst Hlth, D-13353 Berlin, Germany
[6] Univ Hosp Jena, Dept Trauma Hand & Reconstruct Surg, Expt Trauma Surg, D-07747 Jena, Germany
[7] Hsch Bremen City Univ Appl Sci, Ind & Environm Biol, Neustadswall 30, D-28199 Bremen, Germany
关键词
osteointegration; titanium; surface; laser; coating; orthopedics; dental; MECHANICAL-PROPERTIES; HEAT-TREATMENT; OSSEOINTEGRATION; MICROSTRUCTURE; EVOLUTION; ALLOYS;
D O I
10.3390/ma13082000
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Improved implant osteointegration offers meaningful potential for orthopedic, spinal, and dental implants. In this study, a laser treatment was used for the structuring of a titanium alloy (Ti6Al4V) surface combined with a titanium dioxide coating, whereby a porous surface was created. The objective was to characterize the pore structure shape, treatment-related metallographic changes, cytocompatibility, and attachment of osteoblast-like cells (MG-63). The treatment generated specific bottleneck pore shapes, offering the potential for the interlocking of osteoblasts within undercuts in the implant surface. The pore dimensions were a bottleneck diameter of 27 mu m (SD: 4 mu m), an inner pore width of 78 mu m (SD: 6 mu m), and a pore depth of 129 mu m (SD: 8 mu m). The introduced energy of the laser changed the metallic structure of the alloy within the heat-affected region (approximately 66 mu m) without any indication of a micro cracking formation. The phase of the alloy (microcrystalline alpha + beta) was changed to a martensite alpha phase in the surface region and an alpha + beta phase in the transition region between the pores. The MG-63 cells adhered to the structured titanium surface within 30 min and grew with numerous filopodia over and into the pores over the following days. Cell viability was improved on the structured surface compared to pure titanium, indicating good cytocompatibility. In particular, the demonstrated affinity of MG-63 cells to grow into the pores offers the potential to provide significantly improved implant fixation in further in vivo studies.
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页数:12
相关论文
共 33 条
[11]   Optimization of Laser Shock Peening For Titanium [J].
Joshi, Sowmya K. ;
Rajyalakshmi, G. ;
Ranjith, G. ;
Kalainathan, S. ;
Prabhakaran, S. .
MATERIALS TODAY-PROCEEDINGS, 2018, 5 (05) :12174-12186
[12]   Review on titanium and titanium based alloys as biomaterials for orthopaedic applications [J].
Kaur, Manmeet ;
Singh, K. .
MATERIALS SCIENCE AND ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2019, 102 :844-862
[13]   Titanium in Biomedical Applications-Properties and Fabrication: A Review [J].
Khorasani, Amir Mahyar ;
Goldberg, Moshe ;
Doeven, Egan H. ;
Littlefair, Guy .
JOURNAL OF BIOMATERIALS AND TISSUE ENGINEERING, 2015, 5 (08) :593-619
[14]   General review of titanium toxicity [J].
Kim, Kyeong Tae ;
Eo, Mi Young ;
Truc Thi Hoang Nguyen ;
Kim, Soung Min .
INTERNATIONAL JOURNAL OF IMPLANT DENTISTRY, 2019, 5 (1)
[15]   Designing laser-modified surface structures on titanium alloy custom medical implants using a hybrid manufacturing technology [J].
Komorowski, Piotr ;
Sokolowska, Paulina ;
Siatkowska, Malgorzata ;
Elgalal, Marcin ;
Rosowski, Marcin ;
Makowski, Krzysztof ;
Lipinska, Lidia ;
Leszczewicz, Martyna ;
Styczynski, Andrzej ;
Fogel, Kasper ;
Walkowiak, Bogdan .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART B-APPLIED BIOMATERIALS, 2020, 108 (05) :1790-1800
[16]   Projections of primary and revision hip and knee arthroplasty in the United States from 2005 to 2030 [J].
Kurtz, Steven ;
Ong, Kevin ;
Lau, Edmund ;
Mowat, Fionna ;
Halpern, Michael .
JOURNAL OF BONE AND JOINT SURGERY-AMERICAN VOLUME, 2007, 89A (04) :780-785
[17]   New Developments of Ti-Based Alloys for Biomedical Applications [J].
Li, Yuhua ;
Yang, Chao ;
Zhao, Haidong ;
Qu, Shengguan ;
Li, Xiaoqiang ;
Li, Yuanyuan .
MATERIALS, 2014, 7 (03) :1709-1800
[18]   Human mesenchymal stem cell morphology, migration, and differentiation on micro and nano-textured titanium [J].
Long, Emily G. ;
Buluk, Merve ;
Gallagher, Michelle B. ;
Schneider, Jennifer M. ;
Brown, Justin L. .
BIOACTIVE MATERIALS, 2019, 4 :249-255
[19]   Materials for Hip Prostheses: A Review of Wear and Loading Considerations [J].
Merola, Massimiliano ;
Affatato, Saverio .
MATERIALS, 2019, 12 (03)
[20]  
Niinomi M, 2019, WOODH PUBL SER BIOM, P153, DOI 10.1016/B978-0-08-102666-3.00005-5