Interface‐Controlled Biomimetic Intrafibrillar Mineralization of Collagen: Effect of Ca2+/[PO4]3− Concentration Ratio

Author:

Amornkitbamrung Urasawadee12,In Yongjae12,Lee Jung Heon3,Wang Zhen4,Oh Sang Ho4,Shin Heungsoo5,Yoon Dae Sung6,Shin Hyunjung127ORCID

Affiliation:

1. Nature Inspired Materials Processing Research Center Sungkyunkwan University Suwon 16419 South Korea

2. Department of Energy Science Sungkyunkwan University Suwon 16419 South Korea

3. School of Advanced Materials Science and Engineering Sungkyunkwan University Suwon 16419 South Korea

4. Department of Energy Engineering KENTECH Institute for Energy Materials and Devices Korea Institute of Energy Technology (KENTECH) Naju 58330 South Korea

5. Department of Bioengineering Hanyang University Seoul 04763 South Korea

6. Department of Biomedical Engineering Korea University Seoul 02841 South Korea

7. SKKU Institute of Energy Science and Technology (SIEST) Sungkyunkwan University Suwon 16419 South Korea

Abstract

AbstractMineralized fibrils are important building blocks in bone tissue, formed by the hierarchical assembly of collagen molecules and crystalline hydroxyapatite (HAp). The mineralization pathway of HAp is reported as a nonclassical‐crystallization, but the nanoconfined crystallization in collagen fibrils remains poorly understood. The mechanism of intrafibrillar mineralization of collagen‐PDA fibrils in modified‐simulated body fluid (m‐SBF) solution is studied. Collagen‐amorphous calcium phosphate (ACP) fibrils are obtained by assembling collagen‐PDA fibrils with polyaspartic acid (pAsp) as a stabilizer. The ACP undergoes a phase transformation to HAp within the fibrils upon adjusting the phosphate concentration. It is found that the phase transformation of ACP to HAp in collagen fibrils can be accelerated with a 12 h incubation with 1/10 ratio of Ca2+ to [PO4]3−. A lower ratio of 1/1 and 1/5 results in a much slower phase transformation. This finding suggests that an elevated concentration of [PO4]3− is crucial for faster phase transformation. The relationship between the crystallization rate of HAp in the fibrils and the degree of mineralization is found to be linear in all cases, indicating an interface‐controlled process. This gives a better understanding of the mechanism of HAp mineralization in collagen fibrils, providing an effective approach to material design.

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials

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