Sprio Simone, Preti Lorenzo, Montesi Monica, Panseri Silvia, Adamiano Alessio, Vandini Alberta, Pugno Nicola M, Tampieri Anna
Institute of Science and Technology for Ceramics-National Research Council (ISTEC-CNR), Faenza 48018, Italy.
Laboratory of Bio-inspired & Graphene Nanomechanics, Department of Civil, Environmental and Mechanical Engineering, University of Trento, Via Mesiano 77, 38123 Trento, Italy.
ACS Biomater Sci Eng. 2019 Nov 11;5(11):5947-5959. doi: 10.1021/acsbiomaterials.9b00893. Epub 2019 Oct 8.
The present work describes a novel nanocrystalline, multidoped hydroxyapatite featuring excellent eukaryotic versus prokaryotic cell selectivity, attested by excellent osteoinductive character and evaluated with human stem cells, and anti-infective ability, tested against different pathogens. Physicochemical analysis and transmission electron microscopy (TEM)/scanning STEM observations highlighted that such enhanced biological features are related to the lower crystallinity level and increased surface charge of hydroxyapatite, both induced by multiple-ion doping. Specifically, the lattice substitution of Ca with Zn promotes the segregation of Ca and doping Mg cations to a less-ordered surface layer, thus promoting dynamic ion absorption/release acting as bioactive signals for cells and exerting an antiproliferative effect on all tested pathogens. These findings open the design of new biodevices, combining regenerative ability and effective microbial inhibition without using any antibiotic drugs. This is extremely important to circumvent bacterial resistance to antibiotics, which is today considered as one of the biggest threats to global health.
本研究描述了一种新型的纳米晶多掺杂羟基磷灰石,其具有优异的真核细胞与原核细胞选择性,通过出色的骨诱导特性得到证实,并用人干细胞进行了评估,同时还具有抗感染能力,已针对不同病原体进行了测试。物理化学分析以及透射电子显微镜(TEM)/扫描扫描透射电子显微镜(STEM)观察结果表明,这种增强的生物学特性与多离子掺杂诱导的羟基磷灰石较低的结晶度水平和增加的表面电荷有关。具体而言,用锌替代钙的晶格会促进钙的偏析以及掺杂的镁阳离子进入无序程度较低的表面层,从而促进动态离子吸收/释放,作为细胞的生物活性信号,并对所有测试病原体发挥抗增殖作用。这些发现开启了新型生物装置的设计,该装置结合了再生能力和有效的微生物抑制作用,且无需使用任何抗生素药物。这对于规避细菌对抗生素的耐药性极为重要,而细菌对抗生素的耐药性如今被视为对全球健康的最大威胁之一。