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Low systemic toxicity nanocarriers fabricated from heparin-mPEG and PAMAM dendrimers for controlled drug release

机译:低系统性毒性纳米载体,由肝素-MPEG和PAMAM树枝状大分子进行受控药物释放

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摘要

AbstractIn this report, poly(amide amine) (PAMAM) dendrimer and Heparin-grafted-monomethoxy polyethylene glycol (HEP-mPEG) were synthesized and characterized. In aqueous solution, the generation 4 PAMAM dendrimers (G4.0-PAMAM) existed as nanoparticles with particle size of 5.63nm. However, after electrostatic complexation with HEP-mPEG to form a core@shell structure G4.0-PAMAM@HEP-mPEG, the size of nanoparticles was significantly increased (73.82nm). The G4.0-PAMAM@HEP-mPEG nanoparticles showed their ability to effectively encapsulate doxorubicin (DOX) for prolonged and controlled release. The cytocompatibility of G4.0-PAMAM@HEP-mPEG nanocarriers was significantly increased compared with its parentally G4.0-PAMAM dendrimer in both mouse fibroblast NIH3T3 and the human tumor HeLa cell lines. DOX was effectively encapsulated into G4.0-PAMAM@HEP-mPEG nanoparticles to form DOX-loaded nanocarriers (DOX/G4.0-PAMAM@HEP-mPEG) with high loading efficiency (73.2%). The release of DOX from DOX/G4.0-PAMAM@HEP-mPEG nanocarriers was controlled and prolonged up to 96h compared with less than 24h from their parentally G4.0-PAMAM nanocarriers. Importantly, the released DOX retained its bioactivity by inhibiting the proliferation of monolayer-cultured cancer HeLa cells with the same degree of fresh DOX. This prepared G4.0-PAMAM@HEP-mPEG nanocarrier can be a potential candidate for drug delivery systems with high loading capacity and low systemic toxicity in cancer therapy.]]>
机译:<![cdata [ 抽象 在本报告中,聚(酰胺胺)(PAMAM)树枝状聚合物和肝素 - 移植 - 单甲氧基聚乙二醇(HEP -mpeg)被合成并表征。在水溶液中,生成4帕姆树枝状大分子(G4.0-PAMAM)作为粒径为5.63nm的纳米颗粒。但是,在用HEP-MPEG静电络合形成核心@ shell结构G4.0-Pamam@hep-mpeg后,纳米颗粒的尺寸显着增加(73.82nm)。 g4.0-pamam@hep-mpeg纳米颗粒显示它们能够有效地包封多柔比星(DOX)的延长和控制释放。与小鼠成纤维细胞NIH3T3和人肿瘤Hela细胞系相比,G4.0-Pamam@hep-Mpeg纳米瓣膜纳米载体的细胞势率显着增加。 DOX有效地封装在G4.0-PAMAM@Hep-mpeg纳米粒子中,形成具有高负载效率的DOX负载纳米载体(DOX/G4.0-PAMAM@Hep-mpeg)(73.2%)。从DOX/G4.0-PAMAM@hep-mpeg纳米载体释放DOX释放,并长达96h,比其含有肠胃G4.0-PAMAM纳米载体的小于24h。重要的是,释放的DOX通过抑制具有相同程度的新鲜DOX的单层培养的癌症Hela细胞的增殖保留了其生物活性。这款准备的g4.0-pamam@hep-mpeg nanocarrier可以是具有高负载能力和低癌症治疗的药物递送系统的潜在候选者。 < / ce:摘要>]]>

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