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冻干胶原-纳米羟基磷灰石载 BMP2/NS1 mRNA 脂质体复合物诱导体内骨组织生成。

In Vivo bone tissue induction by freeze-dried collagen-nanohydroxyapatite matrix loaded with BMP2/NS1 mRNAs lipopolyplexes.

机构信息

Center for Molecular Biophysics (CBM), UPR 4301 CNRS, Orléans, France; Shenzhen Institute of Advanced Technology, Chinese Academy Sciences, Shenzhen, China.

Center for Molecular Biophysics (CBM), UPR 4301 CNRS, Orléans, France.

出版信息

J Control Release. 2021 Jun 10;334:188-200. doi: 10.1016/j.jconrel.2021.04.021. Epub 2021 Apr 23.

Abstract

Messenger RNA (mRNA) activated matrices (RAMs) are interesting to orchestrate tissue and organ regeneration due to the in-situ and sustained production of functional proteins. However, the immunogenicity of in vitro transcribed mRNA and the paucity of proper in vivo mRNA delivery vector need to be overcome to exert the therapeutic potential of RAM. We developed a dual mRNAs system for in vitro osteogenesis by co-delivering NS1 mRNA with BMP2 mRNA to inhibit RNA sensors and enhance BMP-2 expression. Next, we evaluated a lipopolyplex (LPR) formulation platform for in vivo mRNA delivery and adapted the LPRs for RAM preparation. The LPR formulated BMP2/NS1 mRNAs were incorporated into an optimized collagen-nanohydroxyapatite scaffold and freeze-dried to prepare ready-to-use RAMs. The loaded BMP2/NS1 mRNAs lipopolyplexes maintained their spherical morphology in the RAM, thanks to the core-shell structure of LPR. The mRNAs release from RAMs lasted for 16 days resulting in an enhanced prolonged transgene expression period compared to direct cell transfection. Once subcutaneously implanted in mice, the BMP2/NS1 mRNAs LPRs containing RAMs (RAM-BMP2/NS1) induced significant new bone tissue than those without NS1 mRNA, eight weeks post implantation. Overall, our results demonstrate that the BMP2/NS1 dual mRNAs system is suitable for osteogenic engagement, and the freeze-dried RAM-BMP2/NS1 could be promising off-the-shelf products for clinical orthopedic practice.

摘要

信使 RNA(mRNA) 激活基质(RAMs) 因其可原位和持续产生功能性蛋白质而在组织和器官再生中具有吸引力。然而,体外转录的 mRNA 的免疫原性和适当的体内 mRNA 传递载体的缺乏需要克服,以发挥 RAM 的治疗潜力。我们通过共递送 NS1 mRNA 和 BMP2 mRNA 来开发用于体外成骨的双 mRNA 系统,以抑制 RNA 传感器并增强 BMP-2 表达。接下来,我们评估了用于体内 mRNA 传递的脂质多聚物(LPR)制剂平台,并对 LPR 进行了适应以制备 RAM。将 LPR 包封的 BMP2/NS1 mRNA 掺入优化的胶原-纳米羟基磷灰石支架中并冻干以制备即用型 RAM。由于 LPR 的核壳结构,负载 BMP2/NS1 mRNA 的 LPR 在 RAM 中保持其球形形态。mRNA 从 RAM 中的释放持续了 16 天,与直接细胞转染相比,延长了转基因表达期。一旦将 BMP2/NS1 mRNAs LPR 包封的 RAM(RAM-BMP2/NS1)皮下植入小鼠体内,8 周后,与不含 NS1 mRNA 的 RAM 相比,诱导了显著的新骨组织。总体而言,我们的结果表明,BMP2/NS1 双 mRNA 系统适合成骨作用,冻干的 RAM-BMP2/NS1 可能是临床骨科实践有前途的现成产品。

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