Human induced pluripotent stem cell derived nanovesicles for cardiomyocyte protection and proliferation.

Wei, Yuhua; Geng, Xiaoxiao; You, Qing; Zhang, Yu; Cao, Fangfang; Narayanan, Gunaseelan; Nguyen, Thanh; Chen, Xiaoyuan et al. · Bioact Mater · 2025

basic_science · Level V

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Abstract

It remains a significant challenge to reactivate the cell cycle activity of adult mammalian cardiomyocytes (CMs). This study created a hypo-immunogenic human induced pluripotent stem cell (hiPSC) line using clustered regularly interspaced palindromic repeats (CRISPR)/Cas9 gene editing to knockout β2-microglobulin in hiPSCs (<sup>B2MKO</sup>hiPSCs) for manufacturing nanovesicles (<sup>B2MKO</sup>hiPSC-NVs). Approximately 9500 <sup>B2MKO</sup>hiPSC-NVs were produced from a single <sup>B2MKO</sup>hiPSC. Proteomic analyses indicated that, compared to <sup>B2MKO</sup>hiPSCs, the cargos of <sup>B2MKO</sup>hiPSC-NVs were enriched in spindle and chromosomal proteins, as well as proteins that regulate the cell cycle and scavenge reactive oxygen species (ROS). When administrated to hiPSCs derived CMs (hiPSC-CMs), <sup>B2MKO</sup>hiPSC-NVs reduced lactate dehydrogenase leakage and apoptosis in hypoxia-cultured hiPSC-CMs through activating the AKT pathway, protected hiPSC-CMs from H<sub>2</sub>O<sub>2</sub>-induced damage by ROS scavengers in the NV cargo, increased hiPSC-CM proliferation via the YAP pathway, and were hypoimmunogenic when co-cultured with human CD8<sup>+</sup> T cells or delivered to mice. Furthermore, when <sup>B2MKO</sup>hiPSC-NVs or 0.9 % NaCl were intramyocardially injected into mice after cardiac ischemia/reperfusion injury, cardiac function and infarct size, assessed 4 weeks later, were significantly improved in the <sup>B2MKO</sup>hiPSC-NV group, with increased mouse CM survival and cell cycle activity. Thus, the proteins in the <sup>B2MKO</sup>hiPSC-NV cargos convergently activated the AKT pathway, scavenged ROS to protect CMs, and upregulated YAP signaling to induce CM cell cycle activity. Thus, <sup>B2MKO</sup>hiPSC-NVs hold great potential for cardiac protection and regeneration.