Department of Orthopedic, Spinal Pain Research Institute, Shanghai Tenth People's Hospital, Tongji University School of Medicine, Shanghai, 200072, P. R. China.
Phys Chem Chem Phys. 2020 Jun 21;22(23):13108-13117. doi: 10.1039/d0cp00797h. Epub 2020 Jun 3.
Adenosine triphosphate (ATP) biomolecules play critial roles in the biomineralization process during the formation of amorphous calcium phosphate composites (ACPC), and ACPC is an important drug carrier due to its significant advantages of biocompatibility and biodegradability. Hence, studying the behavior of ACPC nanodrug carriers is crucial to investigate the structural regulation of biomimetic minerals and calcium phosphate (CaP)-based drug delivery systems. However, it is difficult to probe these interactions using traditional characterization methods. In this paper, XANES analysis together with STXM successfully provided a method to reveal the interaction of ATP and drug molecules with individual mesoporous ACPC. We found that the adenosine and phosphate groups of ATP biomolecules coordinated with Ca and played critical roles in the formation of ACPC; drug molecules with the -COOH groups were linked to Cavia carboxylic acid groups primarily by electrostatic interactions, and the N-containing ring structures within the drug molecules also coordinated with Ca.
三磷酸腺苷(ATP)生物分子在无定形磷酸钙复合材料(ACPC)形成过程中的生物矿化过程中发挥着关键作用,由于其生物相容性和可生物降解性的显著优势,ACPC 是一种重要的药物载体。因此,研究 ACPC 纳米药物载体的行为对于研究仿生矿物的结构调控和基于磷酸钙(CaP)的药物传递系统至关重要。然而,使用传统的表征方法很难探测这些相互作用。在本文中,XANES 分析与 STXM 成功地提供了一种方法来揭示 ATP 和药物分子与单个介孔 ACPC 的相互作用。我们发现,ATP 生物分子的腺苷和磷酸基团与 Ca 配位,并在 ACPC 的形成中发挥关键作用;具有-COOH 基团的药物分子主要通过静电相互作用与 Cavia 羧酸基团相连,药物分子内的含 N 环结构也与 Ca 配位。