首页> 外文期刊>Acta biomaterialia >Intracellular co-delivery of Sr ion and phenamil drug through mesoporous bioglass nanocarriers synergizes BMP signaling and tissue mineralization
【24h】

Intracellular co-delivery of Sr ion and phenamil drug through mesoporous bioglass nanocarriers synergizes BMP signaling and tissue mineralization

机译:通过介孔的生物糖钾纳米载体对Sr离子和Phenamil药物的细胞内共递送协同BMP信号传导和组织矿化

获取原文
获取原文并翻译 | 示例
获取外文期刊封面目录资料

摘要

Graphical abstract Display Omitted Abstract Inducing differentiation and maturation of resident multipotent stem cells (MSCs) is an important strategy to regenerate hard tissues in mal-calcification conditions. Here we explore a co-delivery approach of therapeutic molecules comprised of ion and drug through a mesoporous bioglass nanoparticle (MBN) for this purpose. Recently, MBN has offered unique potential as a nanocarrier for hard tissues, in terms of high mesoporosity, bone bioactivity (and possibly degradability), tunable delivery of biomolecules, and ionic modification. Herein Sr ion is structurally doped to MBN while drug Phenamil is externally loaded as a small molecule activator of BMP signaling, for the stimulation of osteo/odontogenesis and mineralization of human MSCs derived from dental pulp. The Sr-doped MBN (85Si:10Ca:5Sr) sol-gel processed presents a high mesoporosity with a pore size of ~6 nm. In particular, Sr ion is released slowly at a daily rate of ~3 ppm per mg nanoparticles for up to 7 days, a level therapeutically effective for cellular stimulation. The Sr-MBN is internalized to most MSCs via an ATP dependent macropinocytosis within hours, increasing the intracellular levels of Sr, Ca and Si ions. Phenamil is loaded maximally ~30% into Sr-MBN and then released slowly for up to 7 days. The co-delivered molecules (Sr ion and Phenamil drug) have profound effects on the differentiation and maturation of cells, i.e., significantly enhancing expression of osteo/odontogenic genes, alkaline phosphatase activity, and mineralization of cells. Of note, the stimulation is a result of a synergism of Sr and Phenamil, through a Trb3-dependent BMP signaling pathway. This biological synergism is further evidenced in vivo in a mal-calcification condition involving an extracted tooth implantation in dorsal subcutaneous tissues of rats. Six weeks post operation evidences the osseous-dentinal hard tissue formation, which is significantly stimulated by the Sr/Phenamil delivery, based on histomorphometric and micro-computed tomographic analyses. The bioactive nanoparticles releasing both Sr ion and Phenamil drug are considered to be a promising therapeutic nanocarrier platform for hard tissue regeneration. Furthermore, this novel ion/drug co-delivery concept through nanoparticles can be extensively used for other tissues that require different therapeutic treatment. Statement of Significance This study reports a novel design concept in inorganic nanoparticle delivery system for hard tissues – the co-delivery of therapeutic molecules comprised of ion (Sr) and drug (Phenamil) through a unique nanoparticle of mesoporous bioactive glass (MBN). The physico-chemical and biological properties of MBN enabled an effective loading of both therapeutic molecules and a subsequently sustained/controlled release. The co-delivered Sr and Phenamil demonstrated significant stimulation of adult stem cell differentiation in vitro and osseous/dentinal regeneration in vivo , through BMP signaling pathways. We consider the current combination of Sr ion with Phenamil is suited for the osteo/odontogenesis of stem cells for hard tissue regeneration, and further, this ion/drug co-delivery concept can extend the applications to other areas that require specific cellular and tissue functions. ]]>
机译:图形摘要显示省略摘要诱导常规多能干细胞(MSCs)的分化和成熟是重新生成MAL钙化条件中硬组织的重要策略。在这里,我们探讨了通过介孔的生物胶纳米粒子(MBN)包含离子和药物的治疗分子的共递送方法。最近,根据高介孔,骨生物活性(以及可能降解性),生物分子的可调递送和离子改性,MBN为硬组织的纳米载体提供了独特的潜力。这里,Sr离子在结构上掺杂至MBN,而药物phenamil作为BMP信号传导的小分子活化剂外部装载,用于刺激来自牙科纸浆的人MSCs的Osteo / Odontocis和矿化。 SR掺杂的MBN(85SI:10CA:5SR)溶胶加工呈高凹陷率,孔径为〜6nm。特别地,Sr离子以每日径向纳米颗粒的每日速率缓慢释放,最多7天,对细胞刺激的治疗有效的水平。 SR-MBN在小时内通过ATP依赖性巨噬菌菌作用内化至大多数MSCs,增加了SR,Ca和Si离子的细胞内水平。 PhenamiL最大〜30%的载入SR-MBN,然后缓慢释放到最多7天。共递送的分子(Sr离子和Phenamil药物)对细胞的分化和成熟具有深远的影响,即显着增强骨酮/偶联基因,碱性磷酸酶活性和细胞矿化的表达。值得注意的是,刺激是SR和Phenamil的协同作用的结果,通过TRB3依赖性BMP信号通路。这种生物学协同作用进一步在体内证明了一种涉及大鼠背部皮下组织中提取的牙齿植入的MAL钙化病症。六周后手术证明了骨干硬组织形成,基于组织形态和微计算断层分析,通过SR / Phenamil递送显着刺激。释放SR离子和Phenamil药物的生物活性纳米粒子被认为是用于硬组织再生的有希望的治疗性纳米载体平台。此外,通过纳米颗粒的这种新型离子/药物共递送概念可以广泛地用于需要不同治疗治疗的其他组织。重要陈述本研究报告了硬组织无机纳米粒子输送系统中的新颖设计概念 - 通过介孔生物活性玻璃(MBN)的独特纳米颗粒(MBN)的独特纳米颗粒包含离子(Sr)和药物(Phenamil)的治疗分子的共递送。 MBN的物理化学和生物学性质使治疗分子的有效负载和随后的持续/控制释放。共同递送的Sr和Phenamil通过BMP信号传导途径表明了体内体外和蛋白质/牙本质再生的成虫和牙本质再生的显着刺激。我们认为SR离子与Phenamil的当前组合适用于干细胞的干细胞的Osteo / Odontocaesis用于硬组织再生,进一步,该离子/药物共同输送概念可以将应用扩展到需要特定细胞和组织功能的其他区域。 ]]>

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号