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A novel therapeutic design of microporous-structured biopolymer scaffolds for drug loading and delivery

机译:一种用于药物装载和递送的微孔结构生物聚合物支架的新型治疗设计

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摘要

Three-dimensional (3-D) open-channeled scaffolds of biopolymers are a promising candidate matrix for tissue engineering. When scaffolds have the capacity to deliver bioactive molecules the potential for tissue regeneration should be greatly enhanced. In order to improve drug-delivery capacity, we exploit 3-D poly(lactic acid) (PLA) scaffolds by creating microporosity within the scaffold network. Macroporous channeled PLA with a controlled pore configuration was obtained by a robotic dispensing technique. In particular, a room temperature ionic liquid (RTIL) bearing hydrophilic counter-anions, such as OTf and Cl, was introduced to the biopolymer solution at varying ratios. The RTIL-biopolymer slurry was homogenized by ultrasonication, and then solidified through the robotic dispensing process, during which the biopolymer and RTIL formed a bicontinuous interpenetrating network. After ethanol wash-out treatment the RTIL was completely removed to leave highly microporous open channels throughout the PLA network. The resultant pore size was observed to be a few micrometers (average 2.43 μm) and microporosity was determined to be ~70%. The microporous surface was also shown to favor initial cell adhesion, stimulating cell anchorage on the microporous structure. Furthermore, in vivo tissue responses assessed in rat subcutaneous tissue revealed good tissue compatibility, with minimal inflammatory reactions, while gathering a larger population of fibroblastic cells than the non-microporous scaffolds, and even facilitating invasion of the cells within the microporous structure. The efficacy of the micropore networks generated within the 3-D scaffolds in loading and releasing therapeutic molecules was addressed using antibiotic sodium ampicillin and protein cytochrome C as model drugs. The microporous scaffolds exhibited significantly enhanced drug loading capacity: 4-5 times increase in ampicillin and 9-10 times increase in cytochrome C compared to the non-microporous scaffolds. The release of ampicillin loaded within the microporous scaffolds was initially fast (~85% for 1 week), and was then slowed down, showing a continual release up to a month. On the other hand, cytochrome C was shown to release in a highly sustainable manner over a month, without showing an initial burst release effect. This study provides a novel insight into the generation of 3-D biopolymer scaffolds with high performance in loading and delivery of biomolecules, facilitated by the creation of microporous channels through the scaffold network. The capacity to support tissue cells while in situ delivering drug molecules makes the current scaffolds potentially useful for therapeutic tissue engineering.
机译:生物聚合物的三维(3-D)开放通道支架是组织工程的有希望的候选基质。当支架具有提供生物活性分子的能力时,应大大提高组织再生的可能性。为了提高药物输送能力,我们通过在脚手架网络内产生微孔度来利用3-D poly(乳酸)(PLA)支架。通过机器人分配技术获得具有受控孔结构的大孔通道PLA。特别地,将室温离子液体(RTIL)以不同比例引入生物聚合物溶液中的亲水性反抗阴离子,例如OTF和Cl。通过超声波均化RTIL-生物聚合物浆液,然后通过机器人分配过程固化,在此期间,生物聚合物和RTIL形成了双连续的互穿网络。在乙醇洗涤处理之后,完全除去RTIL以在整个PLA网络中留出高度微孔的开放通道。将所得孔径观察到几微米(平均2.43μm),测定微孔率为约70%。还显示微孔表面有利于初始细胞粘附,刺激微孔结构上的细胞锚固。此外,在大鼠皮下组织中评估的体内组织反应揭示了良好的组织相容性,具有最小的炎症反应,同时聚集比非微孔支架的较大群体,甚至促进微孔结构内的细胞侵袭。使用抗生素氨苄青霉素和蛋白质细胞色素C作为模型药物解决了在装载和释放治疗分子中的3-D支架内产生的微孔网络的疗效。微孔支架表现出显着增强的药物负载能力:氨苄青霉素增加4-5倍,与非微孔支架相比,细胞色素C的9-10倍。在微孔支架内装载的氨苄青霉素的释放最初是快速的(〜85%,1周),然后减慢,显示持续释放到一个月。另一方面,将细胞色素C显示在一个月内以高度可持续的方式释放,而不显示初始爆发释放效果。本研究提供了一种新的洞察力,进入产生的3-D生物聚合物支架的产生高性能,以便在生物分子的装载和递送中,通过脚手架网络的产生微孔通道进行了促进的。在原位递送药物分子的同时支持组织细胞的能力使电流支架可能用于治疗组织工程。

著录项

  • 来源
    《Acta biomaterialia》 |2014年第3期|共13页
  • 作者单位

    Institute of Tissue Regeneration Engineering (ITREN) Dankook University South Korea Department;

    Institute of Tissue Regeneration Engineering (ITREN) Dankook University South Korea Department;

    Institute of Tissue Regeneration Engineering (ITREN) Dankook University South Korea Department;

    Institute of Tissue Regeneration Engineering (ITREN) Dankook University South Korea Department;

    Institute of Tissue Regeneration Engineering (ITREN) Dankook University South Korea Department;

    Institute of Tissue Regeneration Engineering (ITREN) Dankook University South Korea Department;

    Institute of Tissue Regeneration Engineering (ITREN) Dankook University South Korea Department;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 普通生物学;
  • 关键词

    3-D porous scaffolds; Drug loading capacity; Microporous structure; Phase separation; Sustained drug delivery;

    机译:3-D多孔脚手架;药物负载能力;微孔结构;相分离;持续的药物递送;

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