Direct Reprogramming Induces Vascular Regeneration Post Muscle Ischemic Injury.

再生(生物学) 重编程 干细胞 细胞生物学 诱导多能干细胞 缺血 生物 医学 细胞疗法 心肌细胞 再生医学 血管生成 骨骼肌 祖细胞 移植 再灌注损伤 间充质干细胞 肌发生 癌症研究
作者
Keerat Kaur,Yoav Hadas,Ann Anu Kurian,Magdalena M. Żak,Jimeen Yoo,Asharee Mahmood,Hanna Girard,Rinat Komargodski,Toshiro Io,Maria Paola Santini,Nishat Sultana,Mohammad Tofael Kabir Sharkar,Ajit Magadum,Anthony S. Fargnoli,Seonghun Yoon,Elena Chepurko,Vadim Chepurko,Efrat Eliyahu,Dalila Pinto,Djamel Lebeche,Jason C. Kovacic,Roger J. Hajjar,Shahin Rafii,Lior Zangi
出处
期刊:Molecular Therapy [Elsevier]
卷期号:29 (10): 3042-3058
标识
DOI:10.1016/j.ymthe.2021.07.014
摘要

Reprogramming non-cardiomyocytes (non-CMs) into cardiomyocyte (CM)-like cells is a promising strategy for cardiac regeneration in conditions such as ischemic heart disease. Here, we used a modified mRNA (modRNA) gene delivery platform to deliver a cocktail, termed 7G-modRNA, of four cardiac-reprogramming genes—Gata4 (G), Mef2c (M), Tbx5 (T), and Hand2 (H)—together with three reprogramming-helper genes—dominant-negative (DN)-TGFβ, DN-Wnt8a, and acid ceramidase (AC)—to induce CM-like cells. We showed that 7G-modRNA reprogrammed 57% of CM-like cells in vitro. Through a lineage-tracing model, we determined that delivering the 7G-modRNA cocktail at the time of myocardial infarction reprogrammed ∼25% of CM-like cells in the scar area and significantly improved cardiac function, scar size, long-term survival, and capillary density. Mechanistically, we determined that while 7G-modRNA cannot create de novo beating CMs in vitro or in vivo, it can significantly upregulate pro-angiogenic mesenchymal stromal cells markers and transcription factors. We also demonstrated that our 7G-modRNA cocktail leads to neovascularization in ischemic-limb injury, indicating CM-like cells importance in other organs besides the heart. modRNA is currently being used around the globe for vaccination against COVID-19, and this study proves this is a safe, highly efficient gene delivery approach with therapeutic potential to treat ischemic diseases.
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