4.8 Article

Regulation of cell locomotion by nanosecond-laser-induced hydroxyapatite patterning

期刊

BIOACTIVE MATERIALS
卷 6, 期 10, 页码 3608-3619

出版社

KEAI PUBLISHING LTD
DOI: 10.1016/j.bioactmat.2021.03.025

关键词

Nanosecond laser; Laser engraving; Hydroxyapatite patterning; Cell migration control; Cell tracking

资金

  1. National Research Foundation of Korea (NRF) - Korean government (MSIT) [2020R1A2C2010413]
  2. Korea Medical Device Development Fund - Korea government (Ministry of Science and ICT) [9991007189]
  3. Korea Medical Device Development Fund - Korea government (Ministry of Health Welfare) [9991007189]
  4. Korea Medical Device Development Fund - Korea government (Ministry of Food and Drug Safety) [9991007189]
  5. KIST project [2E31121]
  6. KU-KIST Graduate School of Converging Science and Technology Program
  7. Korea Medical Device Development Fund - Korea government (Ministry of Trade, Industry and Energy) [9991007189]
  8. National Research Foundation of Korea [2020R1A2C2010413] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

向作者/读者索取更多资源

A method utilizing laser patterning to promote cell migration on hydroxyapatite coating surfaces was proposed, enhancing biocompatibility and bone formation. This method allows for the control of cell adhesion and movement speed, and can be applied to various surface treatments of implanted biomaterials.
Hydroxyapatite, an essential mineral in human bones composed mainly of calcium and phosphorus, is widely used to coat bone graft and implant surfaces for enhanced biocompatibility and bone formation. For a strong implant-bone bond, the bone-forming cells must not only adhere to the implant surface but also move to the surface requiring bone formation. However, strong adhesion tends to inhibit cell migration on the surface of hydroxyapatite. Herein, a cell migration highway pattern that can promote cell migration was prepared using a nanosecond laser on hydroxyapatite coating. The developed surface promoted bone-forming cell movement compared with the unpatterned hydroxyapatite surface, and the cell adhesion and movement speed could be controlled by adjusting the pattern width. Live-cell microscopy, cell tracking, and serum protein analysis revealed the fundamental principle of this phenomenon. These findings are applicable to hydroxyapatite-coated biomaterials and can be implemented easily by laser patterning without complicated processes. The cell migration highway can promote and control cell movement while maintaining the existing advantages of hydroxyapatite coatings. Furthermore, it can be applied to the surface treatment of not only implant materials directly bonded to bone but also various implanted biomaterials implanted that require cell movement control.

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