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Long-Term Human Hematopoietic Stem Cell Culture in Microdroplets

机译:微型轧体中长期人造血干细胞培养

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摘要

We previously reported a new approach for micromanipulation and encapsulation of human stem cells using a droplet-based microfluidic device. This approach demonstrated the possibility of encapsulating and culturing difficult-to-preserve primary human hematopoietic stem cells using an engineered double-layered bead composed by an inner layer of alginate and an outer layer of Puramatrix. We also demonstrated the maintenance and expansion of Multiple Myeloma cells in this construction. Here, the presented microfluidic technique is applied to construct a 3D biomimetic model to recapitulate the human hematopoietic stem cell niche using double-layered hydrogel beads cultured in 10% FBS culture medium. In this model, the long-term maintenance of the number of cells and expansion of hHSCS encapsulated in the proposed structures was observed. Additionally, a phenotypic characterization of the human hematopoietic stem cells generated in the presented biomimetic model was performed in order to assess their long-term stemness maintenance. Results indicate that the ex vivo cultured human CD34+ cells from bone marrow were viable, maintained, and expanded over a time span of eight weeks. This novel long-term stem cell culture methodology could represent a novel breakthrough to improve Hematopoietic Progenitor cell Transplant (HPT) as well as a novel tool for further study of the biochemical and biophysical factors influencing stem cell behavior. This technology opens a myriad of new applications as a universal stem cell niche model potentially able to expand other types of cells.
机译:我们之前报道了使用基于液滴的微流体装置进行了一种新的微观方式和封装人干细胞的方法。这种方法证明使用由藻酸内层和丙氨酸外层组成的工程化的双层珠子封装和培养难以保护的原发性人造血干细胞。我们还证明了这种结构中多发性骨髓瘤细胞的维护和扩展。这里,呈现的微流体技术被应用于构建3D仿生模型,以使用在10%FBS培养基中培养的双层水凝胶珠预塑性人造造血干细胞Niche。在该模型中,观察到在所提出的结构中包封的细胞数量和HHSC的扩增的长期维持。另外,进行在所呈现的仿生模型中产生的人造血干细胞的表型表征,以评估它们的长期茎秆维持。结果表明,来自骨髓的离体培养的人CD34 +细胞可行,维持,并在八周的时间范围内扩展。这种新型长期干细胞培养方法可以代表一种改善造血祖细胞移植(HPT)以及进一步研究影响干细胞行为的生物化学和生物物理因素的新工具。该技术开启了一个Myriad的新应用,作为可能能够扩展其他类型的细胞的通用干细胞利基模型。

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