These findings suggest the safety and potential efficacy of allogeneic iPSC-PLTs in humans, and are reported the world’s first clinical evaluation of an allogeneic iPSC-PLT product.
Abstract
Abstract Platelet products are essential for preventing and treating bleeding in patients with thrombocytopenia. However, their short shelf life and reliance on voluntary blood donations pose significant challenges to maintaining a stable supply. To overcome these limitations, induced pluripotent stem cell-derived platelets (iPSC-PLTs) have emerged as a promising alternative. The clinical application of iPSC-PLTs succeeded in demonstrating safety in an autologous transfusion setting; however, allogeneic applications remain unexplored. Here, we report the world’s first clinical evaluation of an allogeneic iPSC-PLT product. An immortalized megakaryocyte cell line (imMKCL) was established from an iPSC line by introducing 3 inducible genes—c-MYC, BMI1, and BCL-XL—and subsequently generating master and working cell banks. Using the working cell bank and turbulent flow bioreactors, an allogeneic iPSC-PLT product, MEG-002, was successfully produced with clinically relevant quality and yield. MEG-002 underwent comprehensive structural and functional characterization, including in vivo efficacy testing in rabbit models, which confirmed its functionality. Preclinical safety studies revealed no concerns. A clinical trial was conducted in accordance with ethical and regulatory standards in Japan. MEG-002 was infused into a patient with aplastic anemia at a dose of 6 × 1010 platelets. No adverse events were reported, and no clinically significant changes were observed in any assessments. Furthermore, a transient increase in platelet count and evidence of iPSC-PLT circulation were observed. Despite being descriptive observations from a single subject, these findings suggest the safety and potential efficacy of allogeneic iPSC-PLTs in humans. The clinical trial is registered with the Japan Registry of Clinical Trials (jRCT2053210068).
Red blood cell (RBC)-based therapeutic enzyme delivery systems require cell sources that can support future standardized large-scale production, with the prerequisite that engineering modifications preserve the cells' inherent biocompatibility and long-circulating potential. In this study, we first demonstrated proof-of-principle by successfully engineering asparaginase (ASPG)-loaded erythroid cells in the human erythroid progenitor cell line (HUDEP-2), where efficient ASPG expression and intact enzymatic activity were confirmed. To facilitate clinical translation, the validated strategy was further applied to human induced pluripotent stem cells (iPSCs), and the differentiated products were systematically characterized. It is worth noting that the key membrane markers of iPSC-derived ASPG-loaded erythroid cells (i-ASPG-R), including CD47 and CD55, were comparable to those of human RBCs (hRBCs). The results of Annexin V staining indicated a healthy cell status. More importantly, these cells displayed ASPG activity equivalent to that of HUDEP-2-derived counterparts. Moreover, the expression of ASPG did not affect enucleation and the composition of globin. In vitro function assays showed that compared with the control group, the proliferation of CCRF-CEM leukemia cells was inhibited by 48% after 24h of co-culture with i-ASPG-R. In summary, this study established an iPSC-derived platform for generating ASPG-loaded erythroid cells with favorable carrier properties and evident anti-leukemic activity in vitro, laying a conceptual foundation for future cell therapy manufacturing via optimized terminal maturation.
Xiaobei Cheng, Biao Zhang, Yameng Ling et al.· International Journal of Bio...· 0 citations
Heart failure is a major clinical and economic burden that afflicts 60 million individuals worldwide. Guideline-directed medical therapies can slow disease progression, but they cannot restore the loss of cardiomyocytes. Over the past two decades, human pluripotent stem cell (hPSC)-based technology has emerged as a leading approach to overcome limited cardiac regenerative capacity, offering a scalable source of functional human cardiomyocytes. The field is now at a pivotal translational stage, as advances in differentiation and tissue engineering have enabled hPSC-based products to enter first-in-human clinical trials. In this review, we summarize the pathophysiological rationale for cell-based therapy in heart failure with reduced ejection fraction. Then, we examine the preclinical foundations of distinct hPSC-derived product formats, including cell suspensions, epicardial sheets, engineered heart muscle, and cardiac spheroids, each with distinct tradeoffs and translational considerations. We conclude by providing updates on ongoing and recently completed clinical trials, evaluating their safety, feasibility, and preliminary efficacy outcomes.
Byron W H Mui, E. Neofytou, Joseph C. Wu· Cell Reports Medicine· 0 citations