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首页> 外文期刊>Biomacromolecules >In Situ Forming Reduction-Sensitive Degradable Nanogels for Facile Loading and Triggered Intracellular Release of Proteins
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In Situ Forming Reduction-Sensitive Degradable Nanogels for Facile Loading and Triggered Intracellular Release of Proteins

机译:原位形成还原敏感的可降解纳米凝胶,用于轻松加载和触发蛋白质的细胞内释放

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In situ forming reduction-sensitive degradable nanogels were designed and developed based on poly(ethylene g!ycoI)-b poly(2-(hydroxyethyl) methacrylate-co-acryloyl carbonate) (PEG-P(HEMA-co-AC)) block copolymers for efficient loading as well as triggered intracellular release of proteins. PEG-P(HEMA-co-AC) copolymers were prepared with controlled M_n of 9.1, 9.5, and 9.9 kg/mol and varying numbers of AC units per molecule of 7, 9 and 11, respectively (denoted as copolymer 1, 2, and. 3) by reversible addition—fragmentation chain transfer copolymerization. These copolymers were freely soluble in phosphate buffer but formed disulfide-cross-linked nanogels with defined sizes ranging from 72.5 to 124.1norm the presence of cystamine via ring-opening reaction with cyclic carbonate groups. The sizes of nanogels decreased with increasing AC units as a result of increased cross-linking density. Dynamic light scattering studies showed that these nanogels though stable at physiological conditions were rapidly dissociated in response to 10 mM dithiothreitol (DTT). Interestingly, EITG-labeled: cytochrome C (FITC-CC) could be readily loaded into nanogels with remarkable loading efficiencies (up to 98.2%) and loading contents (up to 48.2 wt.%). The in vitro release studies showed that release of FITC-CC was;minimal under physiological conditions but significantly enhanced under reductive conditions in the presence of 10 mM DTT with about 96.8% of FITC—CC released in 22 h from nanogel 1. In contrast, protein release from 1,4-butanediamine cross-linked nanogels (reduction-insensitive control) remained low under otherwise the same conditions. MTT assays showed that these nanogels were nontoxic to HeLa cells up to a tested concentration of 2 mg/mL. Confocal microscopy results showed that nanogel 1 delivered and released FITC-CC into the perinuclei region of HeLa cells following 8 h incubation. CC-loaded reductively degradable nanogels demonstrated apparently better apoptotic activity than free CC as well as reduction-insensitive controls. These in situ forming, surfactant and oil-free, and reduction-sensitive degradable nanogels are highly promising for targeted protein therapy.
机译:基于聚(乙烯乙二醇)-b聚(2-(羟乙基)甲基丙烯酸甲酯-共丙烯酰碳酸酯)(PEG-P(HEMA-co-AC))嵌段设计并开发了原位形成还原敏感的可降解纳米凝胶共聚物可有效负载并触发蛋白质的细胞内释放。制备PEG-P(HEMA-co-AC)共聚物,控制M_n为9.1、9.5和9.9 kg / mol,每分子分别具有7、9和11个不同数量的AC单元(分别表示为共聚物1,2, 3)通过可逆加成-断裂链转移共聚。这些共聚物可自由溶解于磷酸盐缓冲液中,但形成的二硫化物交联纳米凝胶的定义尺寸范围为72.5至124.1,通过与环状碳酸酯基团的开环反应来确定是否存在胱胺。由于交联密度的增加,纳米凝胶的尺寸随着AC单元的增加而减小。动态光散射研究表明,这些纳米凝胶虽然在生理条件下稳定,但响应10 mM二硫苏糖醇(DTT)却迅速解离。有趣的是,EITG标记的细胞色素C(FITC-CC)可以轻松加载到纳米凝胶中,具有显着的加载效率(高达98.2%)和负载含量(高达48.2 wt。%)。体外释放研究表明,在生理条件下,FITC-CC的释放最小;在10 mM DTT存在的还原条件下,FITC-CC的释放显着增强,在22 h内从纳米凝胶1中释放出约96.8%的FITC-CC。在其他条件相同的情况下,从1,4-丁二胺交联的纳米凝胶(对还原不敏感的对照)中释放的蛋白质仍然很低。 MTT分析表明,这些纳米凝胶对HeLa细胞无毒,直至2 mg / mL的测试浓度。共聚焦显微镜结果显示,孵育8小时后,纳米凝胶1将FITC-CC释放并释放到HeLa细胞的核周围区域。负载CC的可还原降解纳米凝胶表现出比游离CC以及对还原反应不敏感的对照更好的凋亡活性。这些原位形成的,表面活性剂和无油的,对还原敏感的可降解纳米凝胶对于靶向蛋白质治疗非常有前途。

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