Lactoferrin Coating Improves the Antibacterial and Osteogenic Properties of Alkali-Treated Titanium with Nanonetwork Structures

Author:

Yin Derong12,Hong Yonglong3ORCID,Chen Luyuan24ORCID,Komasa Satoshi2ORCID,Yang Yuanyuan2,Zhang Honghao2,Yan Sifan2,Nishizaki Hiroshi5ORCID,Kusumoto Tetsuji5,Sui Wen2,Kawazoe Takayoshi6,Okazaki Joji2ORCID

Affiliation:

1. State Key Laboratory of Oral Diseases and National Clinical Research Center for Oral Diseases, West China School of Stomatology, Sichuan University, Chengdu 610041, China

2. Department of Removable Prosthodontics and Occlusion, Osaka Dental University, 8-1 Kuzuha-hanazono-cho, Hirakata, Osaka 573-1121, Japan

3. Department of Oral and Maxillofacial Surgery, Shenzhen Hospital, Southern Medical University, 1333 Xinhu Road, Shenzhen, 518100 Guangdong, China

4. Department of Stomatology Center, Shenzhen Hospital, Southern Medical University, 1333 Xinhu Road, Shenzhen, 518100 Guangdong, China

5. Faculty of Health Sciences, Department of Oral Health Engineering, Osaka Dental University, 1-4-4 Makino-Honmachi, Hirakata, Osaka 573-1121, Japan

6. Osaka Dental University, 8-1 Kuzuha-hanazono-cho, Hirakata, Osaka 573-1121, Japan

Abstract

Titanium and its alloys are the main dental implant materials used at present. The biological properties of pure titanium can be further improved by surface treatment methods. Alkali treatment of pure titanium at room temperature can form nanonetwork structures (TNS) on the surface, which has better osteoinductive ability than pure titanium. However, TNS does not possess antimicrobial properties, and bacterial infection is one of the main reasons for the failure of dental implant therapy. Therefore, it was the focus of our research to endow TNS with certain antimicrobial properties on the premise of maintaining its osteoinductive ability. Because of its excellent broad-spectrum antimicrobial properties and because it promotes osteoblast-like cell growth, lactoferrin (LF) was considered a promising prospect as a surface biological treatment material. In this study, bovine LF of physiological concentration was successfully coated on the surface of TNS to form the TNS-LF composite material. Results from in vitro and in vivo experiments showed that TNS-LF had better osteoinductive ability than TNS. Bacterial attachment and biofilm formation were also significantly decreased on the surface of TNS-LF. Therefore, this study has provided an experimental basis for the development of osteoinduction-antimicrobial composite implant materials for dental applications.

Funder

Otsuka Toshimi Scholarship Foundation

Publisher

Hindawi Limited

Subject

General Materials Science

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