Department of Materials Science and Engineering, University of Illinois at Urbana-Champaign, Urbana, IL, 61801, USA.
Department of Chemical and Biomolecular Engineering, University of Illinois at Urbana-Champaign, Urbana, IL, 61801, USA.
Adv Healthc Mater. 2022 Apr;11(7):e2102130. doi: 10.1002/adhm.202102130. Epub 2022 Jan 7.
Hematopoietic stem cells are the progenitors of the blood and immune system and represent the most widely used regenerative therapy. However, their rarity and limited donor base necessitate the design of ex vivo systems that support HSC expansion without the loss of long-term stem cell activity. This review describes recent advances in biomaterials systems to replicate features of the hematopoietic niche. Inspired by the native bone marrow, these instructive biomaterials provide stimuli and cues from cocultured niche-associated cells to support HSC encapsulation and expansion. Engineered systems increasingly enable study of the dynamic nature of the matrix and biomolecular environment as well as the role of cell-cell signaling (e.g., autocrine feedback vs paracrine signaling between dissimilar cells). The inherent coupling of material properties, biotransport of cell-secreted factors, and cell-mediated remodeling motivate dynamic biomaterial systems as well as characterization and modeling tools capable of evaluating a temporally evolving tissue microenvironment. Recent advances in HSC identification and tracking, model-based experimental design, and single-cell culture platforms facilitate the study of the effect of constellations of matrix, cell, and soluble factor signals on HSC fate. While inspired by the HSC niche, these tools are amenable to the broader stem cell engineering community.
造血干细胞是血液和免疫系统的祖细胞,代表着应用最广泛的再生治疗方法。然而,由于其稀有性和有限的供体基础,需要设计体外系统来支持造血干细胞的扩增,同时又不丧失长期干细胞活性。这篇综述描述了生物材料系统在复制造血龛位特征方面的最新进展。这些有指导意义的生物材料受天然骨髓的启发,为共培养的龛位相关细胞提供刺激和线索,以支持造血干细胞的封装和扩增。工程系统越来越能够研究基质和生物分子环境的动态性质,以及细胞-细胞信号(例如,相似细胞之间的自分泌反馈与旁分泌信号)的作用。固有材料特性的耦合、细胞分泌因子的生物传递以及细胞介导的重塑促使动态生物材料系统以及能够评估随时间演变的组织微环境的特性和建模工具的发展。造血干细胞鉴定和追踪、基于模型的实验设计以及单细胞培养平台方面的最新进展促进了对基质、细胞和可溶性因子信号的组合对造血干细胞命运的影响的研究。虽然这些工具受到造血干细胞龛位的启发,但它们也适用于更广泛的干细胞工程领域。