生物矿化
无定形磷酸钙
钙
化学
活力测定
傅里叶变换红外光谱
磷酸盐
分子
磷灰石
体外
生物物理学
生物化学
核化学
化学工程
有机化学
矿物学
生物
工程类
作者
Abhishek Indurkar,Pawan Kudale,Vitālijs Rjabovs,Ivo Heinmaa,Öznur Demir,Matvejs Kirejevs,Kristaps Rubenis,Ganesh U. Chaturbhuj,Māris Turks,Jānis Ločs
标识
DOI:10.3389/fbioe.2023.1329752
摘要
As the primary solid phase, amorphous calcium phosphate (ACP) is a pivotal precursor in cellular biomineralization. The intrinsic interplay between ACP and Howard factor underscores the significance of understanding their association for advancing biomimetic ACP development. While organic compounds play established roles in biomineralization, this study presents the synthesis of ACP with naturally occurring organic compounds (ascorbate, glutamate, and itaconate) ubiquitously found in mitochondria and vital for bone remodeling and healing. The developed ACP with organic compounds was meticulously characterized using XRD, FTIR, and solid-state 13 C and 31 P NMR. The morphological analysis revealed the characteristic spherical morphology with particle size close to 20 nm of all synthesized ACP variants. Notably, the type of organic compound strongly influences true density, specific surface area, particle size, and transformation. The in vitro analysis was performed with MC3T3-E1 cells, indicating the highest cell viability with ACP_ASC (ascorbate), followed by ACP_ITA (itaconate). The lowest cell viability was observed with 10 %w/v of ACP_GLU (glutamate); however, 1 %w/v of ACP_GLU was cytocompatible. Further, the effect of small organic molecules on the transformation of ACP to low crystalline apatite (Ap) was examined in Milli-Q ® water, PBS, and α-MEM.
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