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小事起宏图:锰取代磷酸三钙及其生物物理性质

Sic Parvis Magna: Manganese-Substituted Tricalcium Phosphate and Its Biophysical Properties.

作者信息

Rau Julietta V, Fadeeva Inna V, Fomin Alexander S, Barbaro Katia, Galvano Ettore, Ryzhov Alexander P, Murzakhanov Fadis, Gafurov Marat, Orlinskii Sergei, Antoniac Iulian, Uskoković Vuk

机构信息

Istituto di Struttura della Materia, Consiglio Nazionale delle Ricerche (ISM-CNR), Via del Fosso del Cavaliere 100, 00133 Rome, Italy.

AA Baikov Institute of Metallurgy and Materials Science, Russian Academy of Sciences, Leninsky prospect 49, 119334 Moscow, Russia.

出版信息

ACS Biomater Sci Eng. 2019 Dec 9;5(12):6632-6644. doi: 10.1021/acsbiomaterials.9b01528. Epub 2019 Nov 5.

DOI:10.1021/acsbiomaterials.9b01528
PMID:33423482
Abstract

Succeeding in the substitution of pharmaceutical compounds with ions deliverable with the use of resorbable biomaterials could have far-reaching benefits for medicine and economy. Calcium phosphates are known as excellent accommodators of foreign ions. Manganese, the fifth most abundant metal on Earth was studied here as an ionic dopant in β-tricalcium phosphate (β-TCP) ceramics. β-TCP containing different amounts of Mn ions per MnCa(PO) formula ( = 0, 0.001, 0.01, and 0.1) was investigated for a range of physicochemical and biological properties. The results suggested the role of Mn as a structure booster, not breaker. Mn ions increased the size of coherent X-ray scattering regions averaged across all crystallographic directions and also lowered the temperature of transformation of the hydroxyapatite precursor to β-TCP. The particle size increased fivefold, from 20 to 100 nm, in the 650-750 °C region, indicating that the reaction of formation of β-TCP was accompanied by a considerable degree of grain growth. The splitting of the antisymmetric stretching mode of the phosphate tetrahedron occurred proportionally to the Mn content in the material, while electron paramagnetic resonance spectra suggested that Mn might substitute for three out of five possible calcium ion positions in the unit cell of β-TCP. The biological effects of Mn-free β-TCP and Mn-doped β-TCP were selective: moderately proliferative to mammalian cells, moderately inhibitory to bacteria, and insignificant to fungi. Unlike pure β-TCP, β-TCP doped with the highest concentration of Mn ions significantly inhibited the growth of all bacterial species tested: , , , and . The overall effect against the Gram-positive bacteria was more intense than against the Gram-negative microorganisms. Meanwhile, β-TCP alone had an augmentative effect of the viability of adipose-derived mesenchymal stem cells (ADMSCs) and the addition of Mn tended to reduce the extent of this augmentative effect, but without imparting any toxicity. For all Mn-doped β-TCP concentrations except the highest, the cell viability after 72 h incubation was significantly higher than that of the negative control. Assays evaluating the effect of Mn-containing β-TCP formulations on the differentiation of ADMSCs into three different lineages-osteogenic, adipogenic, and chondrogenic-demonstrated no inhibitory or adverse effects compared to pure β-TCP and powder-free positive controls. Still, β-TCP delivering the lowest amount of Mn seemed most effective in sustaining the differentiation process toward all three phenotypes, indicating that the dose of Mn in β-TCP need not be excessive to be effective.

摘要

成功地用可吸收生物材料递送的离子替代药物化合物,可能会给医学和经济带来深远的好处。磷酸钙是众所周知的优异外来离子容纳体。锰是地球上含量第五丰富的金属,本文将其作为β - 磷酸三钙(β-TCP)陶瓷中的离子掺杂剂进行研究。研究了每个MnCa(PO)化学式中含有不同量Mn离子( = 0、0.001、0.01和0.1)的β-TCP的一系列物理化学和生物学性质。结果表明Mn起到结构增强剂而非破坏剂的作用。Mn离子增加了在所有晶体学方向上平均的相干X射线散射区域的尺寸,并且还降低了羟基磷灰石前体向β-TCP转变的温度。在650 - 750°C区域,粒径从20纳米增加到100纳米,增加了五倍,这表明β-TCP的形成反应伴随着相当程度的晶粒生长。磷酸四面体反对称拉伸模式的分裂与材料中的Mn含量成比例发生,而电子顺磁共振光谱表明Mn可能替代β-TCP晶胞中五个可能的钙离子位置中的三个。无Mn的β-TCP和掺Mn的β-TCP的生物学效应具有选择性:对哺乳动物细胞有适度增殖作用,对细菌有适度抑制作用,对真菌无显著影响。与纯β-TCP不同,掺有最高浓度Mn离子的β-TCP显著抑制了所有测试细菌种类的生长: 、 、 、 和 。对革兰氏阳性菌的总体作用比对革兰氏阴性微生物的作用更强。同时,单独的β-TCP对脂肪来源间充质干细胞(ADMSC)的活力有增强作用,而添加Mn往往会降低这种增强作用的程度,但不会产生任何毒性。对于除最高浓度外的所有掺Mn的β-TCP浓度,孵育72小时后的细胞活力显著高于阴性对照。评估含Mn的β-TCP制剂对ADMSC向三种不同谱系——成骨、成脂和软骨生成——分化的影响的试验表明,与纯β-TCP和无粉末阳性对照相比,没有抑制或不良影响。尽管如此,递送最低量Mn的β-TCP似乎在维持向所有三种表型的分化过程中最有效,这表明β-TCP中Mn的剂量不必过高就能有效。

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