Yang Qinqin, Liu Runjin, Wang Xiang
Key Laboratory of Biorheological Science and Technology, Ministry of Education, College of Bioengineering, Chongqing University, Chongqing 400044, China.
Gels. 2025 Jul 31;11(8):594. doi: 10.3390/gels11080594.
Red blood cell (RBC) production from bone marrow hematopoietic stem cells (BMHSCs) in vitro overlooks the mechanical signals of the bone marrow niche and overly relies on growth factors. Considering that the fate of hematopoietic stem cells (HSCs) is determined by the natural bone marrow microenvironment, differences in mechanical microenvironments provide a reference for the regulation of HSC differentiation. This study seek to reveal the role of mechanobiology cues in erythropoiesis and provide a new perspective for the design of in vitro erythropoiesis platforms. The hydrogel platforms we designed simulate the stiffness gradient of the bone marrow niche to culture HSCs and induce their differentiation into the erythroid system. Cells on the low-stiffness scaffold have higher potential for erythrocyte differentiation and faster differentiation efficiency and promote erythrocyte differentiation after erythropoietin (EPO) restriction. In vivo transplantation experiments demonstrated that these cells have the ability for continuous proliferation and differentiation into mature erythrocytes. By combining mechanical cues with in vitro erythrocyte production, this method is expected to provide insights for in vitro hematopoietic design and offer a scalable cell manufacturing platform for transfusion medicine.
体外从骨髓造血干细胞(BMHSCs)生成红细胞(RBC)忽略了骨髓生态位的机械信号,且过度依赖生长因子。鉴于造血干细胞(HSCs)的命运由天然骨髓微环境决定,机械微环境的差异为调节HSC分化提供了参考。本研究旨在揭示机械生物学线索在红细胞生成中的作用,并为体外红细胞生成平台的设计提供新视角。我们设计的水凝胶平台模拟骨髓生态位的硬度梯度来培养HSCs,并诱导它们分化为红细胞系统。低硬度支架上的细胞具有更高的红细胞分化潜力和更快的分化效率,并且在促红细胞生成素(EPO)受限后促进红细胞分化。体内移植实验表明,这些细胞具有持续增殖并分化为成熟红细胞的能力。通过将机械线索与体外红细胞生成相结合,该方法有望为体外造血设计提供见解,并为输血医学提供可扩展的细胞制造平台。