Literature DB >> 32263160

Confinement controlled mineralization of calcium carbonate within collagen fibrils.

Hang Ping1, Hao Xie, Yamin Wan, Zhixiao Zhang, Jing Zhang, Mingyu Xiang, Jingjing Xie, Hao Wang, Weimin Wang, Zhengyi Fu.   

Abstract

Confinement is common in biological systems and plays a critical role in the structure-forming process of biominerals. However, the knowledge of confinement effects on biomineralization is limited due to the lack of specific chemical structures and elaborate spatial distribution. In this article, we explore the confined mineralization of amorphous calcium carbonate (ACC) within collagen fibrils. Three issues of the confined mineralization of ACC within collagen fibrils were investigated, including the morphology and characteristics of the confined mineralization of ACC within collagen fibrils; the initiation and development of the confined mineralization of ACC within collagen fibrils; and the driving mechanism of ACC infiltration into collagen fibrils. Results show that the negatively charged ACC droplets were attracted to positively charged gap regions of collagen fibrils through electrostatic interactions, infiltrated into collagen fibrils, and then transformed into the crystalline phase. The observation of juxtaposed crystalline and amorphous phases on the surface of fibrils indicates that a secondary nucleation mechanism may be responsible for the co-orientation of calcite nanocrystals. Through modifying the wettability of amorphous calcium carbonate with magnesium ions, it is verified that the infiltration of ACC into collagen fibrils was driven by capillary forces. The present study not only provides evidence of the confinement effects in biomineralization but also facilitates the understanding of the in vivo bone formation process. It may also open up a new avenue in the bioprocess-inspired synthesis of advanced materials.

Entities:  

Year:  2016        PMID: 32263160     DOI: 10.1039/c5tb01990g

Source DB:  PubMed          Journal:  J Mater Chem B        ISSN: 2050-750X            Impact factor:   6.331


  3 in total

1.  Collagen mineralization with lepidocrocite via Fe(OH)2 addition.

Authors:  Bernette M Oosterlaken; Mark M J van Rijt; Heiner Friedrich; Gijsbertus de With
Journal:  CrystEngComm       Date:  2022-01-21       Impact factor: 3.545

2.  Assessment of Optimal Conditions for Marine Invertebrate Cell-Mediated Mineralization of Organic Matrices.

Authors:  Jeremy Elias; Thomas Angelini; Mark Q Martindale; Laurie Gower
Journal:  Biomimetics (Basel)       Date:  2022-06-26

3.  Time-Resolved Cryo-TEM Study on the Formation of Iron Hydroxides in a Collagen Matrix.

Authors:  Bernette M Oosterlaken; Mark M J van Rijt; Rick R M Joosten; Paul H H Bomans; Heiner Friedrich; Gijsbertus de With
Journal:  ACS Biomater Sci Eng       Date:  2021-06-23
  3 in total

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