A Non-Invasive Method for Monitoring Osteogenesis and Osseointegration Using Near-Infrared Fluorescent Imaging: A Model of Maxilla Implantation in Rats

Author:

Lin Chien-Chou1,Chiu Li-Hsuan2,Chang Walter H.3,Lin Cheng-An J.3,Chen Ruei-Ming1ORCID,Ho Yuan-Soon1ORCID,Zuo Chun S.2,Changou Austin45,Cheng Yue-Fa6,Lai Wen-Fu T.278

Affiliation:

1. Graduate Institute of Medical Sciences, College of Medicine, Taipei Medical University, Taipei 110, Taiwan

2. McLean Imaging Center, McLean Hospital and Harvard Medical School, Belmont, MA 02478, USA

3. Department of Biomedical Engineering, Chung Yuan Christian University, Taoyuan 320, Taiwan

4. Ph.D. Program for Translational Medicine, College of Medicine and Technology, Taipei Medical University, Taipei 110, Taiwan

5. Core Facility Center, Office of Research and Development, Taipei Medical University, Taipei 110, Taiwan

6. College of Basic Medicine, North China University of Science and Technology, Tangshan 066008, China

7. Institute of Graduate Clinical Medicine, Taipei Medical University, Taipei 110, Taiwan

8. Department of Research and Department of Dentistry, Taipei Medical University-Shuang-Ho Hospital, New Taipei City 235, Taiwan

Abstract

Currently, computed tomography and conventional X-ray radiography usually generate a micro-artifact around metal implants. This metal artifact frequently causes false positive or negative diagnoses of bone maturation or pathological peri-implantitis around implants. In an attempt to repair the artifacts, a highly specific nanoprobe, an osteogenic biomarker, and nano-Au-Pamidronate were designed to monitor the osteogenesis. In total, 12 Sprague Dawley rats were included in the study and could be chategorized in 3 groups: 4 rats in the X-ray and CT group, 4 rats in the NIRF group, and 4 rats in the sham group. A titanium alloy screw was implanted in the anterior hard palate. The X-ray, CT, and NIRF images were taken 28 days after implantation. The X-ray showed that the tissue surrounded the implant tightly; however, a gap of metal artifacts was noted around the interface between dental implants and palatal bone. Compared to the CT image, a fluorescence image was noted around the implant site in the NIRF group. Furthermore, the histological implant-bone tissue also exhibited a significant NIRF signal. In conclusion, this novel NIRF molecular imaging system precisely identifies the image loss caused by metal artifacts and can be applied to monitoring bone maturation around orthopedic implants. In addition, by observing the new bone formation, a new principle and timetable for an implant osseointegrated with bone can be established and a new type of implant fixture or surface treatment can be evaluated using this system.

Publisher

MDPI AG

Subject

Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Computer Science Applications,Spectroscopy,Molecular Biology,General Medicine,Catalysis

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