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NIR Laser-Responsive PNIPAM and Gold Nanorod Composites for the Engineering of Thermally Reactive Drug Delivery Nanomedicine

机译:NIR激光响应性PNIPAM和金纳米棒复合材料用于热反应药物递送纳米药物的工程设计

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摘要

When ingesting a drug on its own or injecting it directly into tissue, its concentration increases immediately within the body, which often exacerbates the side effects and increases its toxicity. To solve this problem, we synthesized the thermally reactive polymer poly( -isopropylacrylamide) (PNIPAM) using reversible addition–fragmentation chain transfer (RAFT) polymerization and prepared nanocarriers by binding PNIPAM to gold nanorods (GRs), with the anticancer agent doxorubicin (DOX) used as a model drug. PNIPAM changes from hydrophilic to hydrophobic at temperatures above its lower critical solution temperature, which represents a coil-to-globule volume phase transition. Because GRs absorb near-infrared (NIR) laser light and emit energy, PNIPAM aggregation occurs when the synthesized PNIPAM/GR are subjected to an NIR laser, and the temperature of the GRs rises. Using this principle, DOX was combined with the PNIPAM/GR complex, and the resulting anticancer effects with and without laser treatment were observed in Hela and MDA-MB-231 cells. In our proposed complex, the GR binding rate of PNIPAM reached 20% and the DOX binding rate reached 15%. The release profile of the drug following laser irradiation was determined using a drug release test and confocal microscopy imaging. It was subsequently confirmed that the release of the drug is higher at higher temperatures, especially with laser treatment. The proposed combination of temperature-reactive polymers and gold nanostructures shows promise for future research into controlled drug release.
机译:自行摄入药物或将其直接注射到组织中时,其浓度会立即在体内增加,这通常会加剧副作用并增加其毒性。为了解决这个问题,我们使用可逆加成-断裂链转移(RAFT)聚合反应合成了热反应性聚合物聚(-异丙基丙烯酰胺)(PNIPAM),并通过将PNIPAM与金纳米棒(GRs)结合并使用抗癌剂阿霉素(DOX)制备了纳米载体。 )用作模型药物。 PNIPAM在高于其较低的临界溶液温度的温度下从亲水性变为疏水性,这代表了从线圈到球体的体积相变。因为GR吸收近红外(NIR)激光并发出能量,所以当合成的PNIPAM / GR受到NIR激光照射时,PNIPAM会发生聚集,并且GR的温度会升高。使用该原理,DOX与PNIPAM / GR复合物结合使用,在Hela和MDA-MB-231细胞中观察到有无激光处理产生的抗癌作用。在我们提出的复合物中,PNIPAM的GR结合率达到20%,而DOX的结合率达到15%。使用药物释放测试和共聚焦显微镜成像确定激光照射后药物的释放曲线。随后证实,在较高温度下,尤其是在激光治疗下,药物的释放较高。所提出的温度反应性聚合物和金纳米结构的组合显示了对控制药物释放的未来研究的希望。

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