沈海俊, 吴志娟, 王东霞, 霍东方, 柏钰, 杨智涵, 姚春芳. 细胞外基质仿生型基因活化支架的构建与表征J. 药学学报, 2017,52(11): 1748-1755. doi: 10.16438/j.0513-4870.2017-0715
引用本文: 沈海俊, 吴志娟, 王东霞, 霍东方, 柏钰, 杨智涵, 姚春芳. 细胞外基质仿生型基因活化支架的构建与表征J. 药学学报, 2017,52(11): 1748-1755. doi: 10.16438/j.0513-4870.2017-0715
SHEN Hai-jun, WU Zhi-juan, WANG Dong-xia, HUO Dong-fang, BAI Yu, YANG Zhi-han, YAO Chun-fang. Preparation and characterization of a gene-activated matrix mimicking extracellular matrix J. Acta Pharmaceutica Sinica, 2017,52(11): 1748-1755. doi: 10.16438/j.0513-4870.2017-0715
Citation: SHEN Hai-jun, WU Zhi-juan, WANG Dong-xia, HUO Dong-fang, BAI Yu, YANG Zhi-han, YAO Chun-fang. Preparation and characterization of a gene-activated matrix mimicking extracellular matrix J. Acta Pharmaceutica Sinica, 2017,52(11): 1748-1755. doi: 10.16438/j.0513-4870.2017-0715

细胞外基质仿生型基因活化支架的构建与表征

Preparation and characterization of a gene-activated matrix mimicking extracellular matrix

  • 摘要: 本文拟构建一种模拟细胞外基质结构与功能的基因活化支架(ECM-m-GAM),并对其结构、机械强度和释放性能进行表征。首先制备细胞穿膜肽TAT修饰的脂质体基因载体TAT-LPD,然后将TAT-LPD与RGD修饰的透明质酸混合,加入交联剂MMPs敏感肽(HS-MMP-SH),使透明质酸凝胶化,在凝胶化过程中实现对TAT-LPD的负载,从而将细胞黏附因子RGD、MMPs敏感底物和高效的基因转染载体TAT-LPD有机地整合到一个结构中,完成ECM-m-GAM的构建。利用PicoGreen试剂盒考察ECM-m-GAM在不同释放介质中DNA的释放行为。研究结果表明:TAT-LPD在透射电镜下呈球形,平均粒径为(263.0 ±4.30) nm,可被成功地包埋在ECM-m-GAM中;ECM-m-GAM具有典型的凝胶结构,机械强度随着透明质酸用量的增加而增强,透明质酸用量为4%时其弹性模量约为1 600 Pa,适合支架植入和组织修复;DNA从ECM-m-GAM中的释放呈现明显的MMPs敏感性,并且释放的DNA仍以纳米粒的形式存在,能够转染大鼠骨髓间充质干细胞(BMSCs)并表达绿色荧光,为后续的细胞转染和组织修复研究奠定了基础。

     

    Abstract: This study aims to establish a novel gene-activated matrix that mimics the structure and function of extracellular matrix (ECM-m-GAM). The structure, mechanical property and release profile were also characterized. Firstly, the liposome/DNA lipoplex (LPD) was modified with cell penetrating peptide TAT. The obtained TAT-LPD was then mixed with RGD grafting hyaluronic acid solution. After addition of the matrix metalloproteinase (MMPs) sensitive crosslinker (HS-MMP-SH), hyaluronic acid was crosslinked and TAT-LPD was encapsulated in the subsequently formed hydrogel. As a result, the cell adhesion factor RGD, MMPs sensitive substrate and the efficient gene transfer vector TAT-LPD were all integrated in the hyaluronic acid hydrogel, which was named as ECM-m-GAM. The release profile of DNA from ECM-m-GAM in different release medium was evaluated with PicoGreen kits. The results suggested that the mean diameter of the spherical TAT-LPD was (263.0 ±4.30) nm. TAT-LPD was successfully encapsulated in ECM-m-GAM, which had the typical porous network structure of hydrogels. The mechanical strength of GAM was enhanced with the increasing of hyaluronic acid content. When the content was 4%, the elastic modulus of GAM reached 1 600 Pa. The highly elastic GAM may be suitable for implantation and tissue regeneration. The DNA release showed significant MMPs sensitive property. Especially, the released DNA still existed in form of nanoparticles. Bone marrow mesenchymal stem cells (BMSCs) were successfully transfected with GAM and the green fluorescent protein was expressed. The results have laid a solid foundation for future study of the cell transfection and tissue regeneration.

     

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