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掺锶羟基磷灰石对纤维状胶原蛋白的仿生矿化

Biomimetic Mineralization of Fibrillar Collagen with Strontium-doped Hydroxyapatite.

作者信息

Ye Zhou, Qi Yipin, Zhang Anqi, Karels Brandon J, Aparicio Conrado

机构信息

MDRCBB, Minnesota Dental Research Center for Biomaterials and Biomechanics, University of Minnesota, Minneapolis, Minnesota 55455, United States.

Applied Oral Sciences and Community Dental Care, Faculty of Dentistry, The University of Hong Kong, Hong Kong, S.A.R., China.

出版信息

ACS Macro Lett. 2023 Mar 21;12(3):408-414. doi: 10.1021/acsmacrolett.3c00039. Epub 2023 Mar 10.

Abstract

Fibrillar collagen structures mineralized with hydroxyapatite using the polymer-induced liquid precursor (PILP) process have been explored as synthetic models for studying biomineralization of human hard tissues and have also been applied in the fabrication of scaffolds for hard tissue regeneration. Strontium has important biological functions in bone and has been used as a therapeutic agent for treating diseases that result in bone defects, such as osteoporosis. Here, we developed a strategy to mineralize collagen with Sr-doped hydroxyapatite (HA) using the PILP process. Doping with Sr altered the crystal lattice of HA and inhibited the degree of mineralization in a concentration-dependent manner, but did not affect the unique formation of intrafibrillar minerals using the PILP. The Sr-doped HA nanocrystals were aligned in the [001] direction but did not recapitulate the parallel alignment of the -axis of pure Ca HA in relation to the collagen fiber long axis. The mimicry of doping Sr in PILP-mineralized collagen can help understand the doping of Sr in natural hard tissues and during treatment. The fibrillary mineralized collagen with Sr-doped HA will be explored in future work as biomimetic and bioactive scaffolds for regeneration of bone and tooth dentin.

摘要

利用聚合物诱导液体前驱体(PILP)工艺用羟基磷灰石矿化的纤维状胶原结构已被作为研究人类硬组织生物矿化的合成模型进行探索,并且也已应用于硬组织再生支架的制造。锶在骨骼中具有重要的生物学功能,并且已被用作治疗导致骨缺损的疾病(如骨质疏松症)的治疗剂。在此,我们开发了一种利用PILP工艺用掺锶羟基磷灰石(HA)矿化胶原的策略。掺入锶改变了HA的晶格,并以浓度依赖的方式抑制了矿化程度,但不影响使用PILP的纤维内矿物质的独特形成。掺锶的HA纳米晶体沿[001]方向排列,但没有重现纯钙HA的c轴相对于胶原纤维长轴的平行排列。在PILP矿化胶原中模拟掺锶有助于理解天然硬组织中以及治疗过程中锶的掺入情况。掺锶HA的纤维状矿化胶原将在未来的工作中作为用于骨和牙本质再生的仿生和生物活性支架进行探索。

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