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Avidity-controlled hydrogels for injectable co-delivery of induced pluripotent stem cell-derived endothelial cells and growth factors

机译:亲和力控制水凝胶用于诱导性多能干细胞来源的内皮细胞和生长因子的注射共输送

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摘要

To translate recent advances in induced pluripotent stem cell biology to clinical regenerative medicine therapies, new strategies to control the co-delivery of cells and growth factors are needed. Building on our previous work designing Mixing-Induced Two-Component Hydrogels (MITCH) from engineered proteins, here we develop protein-polyethylene glycol (PEG) hybrid hydrogels, MITCH-PEG, which form physical gels upon mixing for cell and growth factor co-delivery. MITCH-PEG is a mixture of C7, which is a linear, engineered protein containing seven repeats of the CC43 WW peptide domain (C), and 8-arm star-shaped PEG conjugated with either one or two repeats of a proline-rich peptide to each arm (P1 or P2, respectively). Both 20 kDa and 40 kDa star-shaped PEG were investigated, and all four PEG variants were able to undergo a sol-gel phase transition when mixed with the linear C7 protein at constant physiological conditions due to noncovalent hetero-dimerization between the C and P domains. Due to the dynamic nature of the C-P physical crosslinks, all four gels were observed to be reversibly shear-thinning and self-healing. The P2 variants exhibited higher storage moduli than the P1 variants, demonstrating the ability to tune the hydrogel bulk properties through a biomimetic peptide-avidity strategy. The 20 kDa PEG variants exhibited slower release of encapsulated vascular endothelial growth factor (VEGF), due to a decrease in hydrogel mesh size relative to the 40 kDa variants. Human induced pluripotent stem cell-derived endothelial cells (hiPSC-ECs) adopted a well-spread morphology within three-dimensional MITCH-PEG cultures, and MITCH-PEG provided significant protection from cell damage during ejection through a fine-gauge syringe needle. In a mouse hindlimb ischemia model of peripheral arterial disease, MITCH-PEG co-delivery of hiPSC-ECs and VEGF was found to reduce inflammation and promote muscle tissue regeneration compared to a saline control.
机译:为了将诱导多能干细胞生物学的最新进展转化为临床再生医学疗法,需要新的策略来控制细胞和生长因子的共同传递。在我们之前从工程蛋白设计混合诱导的双组分水凝胶(MITCH)的工作的基础上,我们在此开发蛋白质-聚乙二醇(PEG)混合水凝胶MITCH-PEG,当混合细胞和生长因子时,它们会形成物理凝胶。交货。 MITCH-PEG是C7的混合物,C7是一种线性工程蛋白质,含有CC43 WW肽结构域(C)的七个重复序列,以及与富含脯氨酸的肽的一个或两个重复序列缀合的8臂星形PEG每个手臂(分别为P1或P2)。研究了20 kDa和40 kDa的星形PEG,并且由于C和P之间的非共价异二聚作用,在恒定的生理条件下与线性C7蛋白混合时,所有四个PEG变体都能够经历溶胶-凝胶相变。域。由于C-P物理交联的动态性质,观察到所有四种凝胶均具有可逆的剪切稀化和自修复性。 P2变体显示出比P1变体更高的储能模量,表明具有通过仿生肽亲和力策略调节水凝胶总体性质的能力。由于相对于40kDa变体水凝胶筛孔尺寸减小,所以20kDa PEG变体表现出包囊的血管内皮生长因子(VEGF)的释放较慢。人类诱导的多能干细胞衍生的内皮细胞(hiPSC-EC)在三维MITCH-PEG培养物中采用了良好分布的形态,而MITCH-PEG为通过细规格注射器针头射出过程中的细胞损伤提供了重要的保护。在周围动脉疾病的小鼠后肢缺血模型中,与盐水对照组相比,发现hiPSC-EC和VEGF的MITCH-PEG共递送可减少炎症并促进肌肉组织再生。

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