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Advanced protein adsorption properties of a novel silicate-based bioceramic: A proteomic analysis

机译:新型硅酸盐的生物陶瓷的先进蛋白质吸附性能:蛋白质组学分析

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摘要

Silicate bioceramics have been shown to possess excellent cytocompatibility and osteogenic activity, but the exact mechanism is still unclear. Protein adsorption is the first event taking place at the biomaterial-tissue interface, which is vital to the subsequent cellular behavior and further influence the biomaterial-tissue interaction. In this work, the protein adsorption behavior of a novel CPS bioceramic was evaluated using the proteomics technology. The results showed that CPS adsorbed more amount and types of serum proteins than HA. FN1 and IGF1 proteins selected from proteomics results were validated by Western-blot experiment. Pathway analysis also revealed mechanistic insights how these absorbed proteins by CPS help mediate cell adhesion and promotes osteogenic activity. Firstly, the dramatically enhanced adsorption of FN1 could greatly promote cell adhesion and growth. Secondly, IGF1 was uniquely adsorbed on CPS bioceramic and IGF1 could activate Rap1 signaling pathway to promote cell adhesion. Thirdly, the increased adsorption of FN1, IGF1 and COL1A2 proteins on CPS explains its better ability on bone regeneration than HA. Fourthly, the increased adsorption of IGF1, CHAD, COL2A1 and THBS4 proteins on CPS explains its ability on cartilage formation. Lastly, the increased adsorption of immunological related proteins on CPS may also play a positive role in bone regeneration. In addition, CPS had a much better cell adhesion ability than HA, proving that more adsorbed proteins really had a positive effect on cell behavior. The more adsorbed proteins on CPS than HA might indicated a better bone regeneration rate at early stage of implantation.
机译:已显示硅酸盐生物陶瓷具有优异的细胞蛋白化和骨质化活性,但确切的机制仍然尚不清楚。蛋白质吸附是在生物材料 - 组织界面处发生的第一个事件,这对于随后的细胞行为至关重要,并且进一步影响生物材料 - 组织相互作用。在这项工作中,使用蛋白质组学技术评估新型CPS生物陶瓷的蛋白质吸附行为。结果表明,CPS吸附更多的量和血清蛋白的类型而不是HA。由蛋白质组学结果中选择的FN1和IGF1蛋白质通过Western-Blot实验验证。途径分析还揭示了机械洞察,这些蛋白质通过CPS有助于介导细胞粘附并促进成骨活性。首先,大幅增强的FN1吸附可以大大促进细胞粘附和生长。其次,IGF1在CPS Bioceramic和IGF1上被唯一吸附,可激活RAP1信号通路以促进细胞粘附。第三,对CPS上的FN1,IGF1和COL1A2蛋白的吸附增加,解释了比HA的骨再生更好的能力。第四,对CPS上的IGF1,ChAD,COL2A1和THBS4蛋白的吸附增加地解释了其对软骨形成的能力。最后,增加免疫相关蛋白质对CPS的吸附也可能在骨再生中发挥积极作用。此外,CPS具有比HA更好的细胞粘附能力,证明更多吸附的蛋白质对细胞行为产生了积极影响。 CPS上的吸附蛋白比HA更具吸附的蛋白质可能在植入早期阶段表示更好的骨再生率。

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