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Strategies for elevating hematopoietic stem cells expansion and engraftment capacity

机译:升高造血干细胞扩张和植入能力的策略

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摘要

Hematopoietic stem cells (HSCs) are a rare cell population in adult bone marrow, mobilized peripheral blood, and umbilical cord blood possessing self-renewal and differentiation capability into a full spectrum of blood cells. Bone marrow HSC transplantation has been considered as an ideal option for certain disorders treatment including hematologic diseases, leukemia, immunodeficiency, bone marrow failure syndrome, genetic defects such as thalassemia, sickle cell anemia, autoimmune disease, and certain solid cancers. Ex vivo proliferation of these cells prior to transplantation has been proposed as a potential solution against limited number of stem cells. In such culture process, MSCs have also been shown to exhibit high capacity for secretion of soluble mediators contributing to the principle biological and therapeutic activities of HSCs. In addition, endothelial cells have been introduced to bridge the blood and sub tissues in the bone marrow, as well as, HSCs regeneration induction and survival. Cell culture in the laboratory environment requires cell growth strict control to protect against contamination, symmetrical cell division and optimal conditions for maximum yield. In this regard, microfluidic systems provide culture and analysis capabilities in micro volume scales. Moreover, two-dimensional cultures cannot fully demonstrate extracellular matrix found in different tissues and organs as an abstract representation of three dimensional cell structure. Microfluidic systems can also strongly describe the effects of physical factors such as temperature and pressure on cell behavior.
机译:造血干细胞(HSCs)是成人骨髓,动员的外周血和脐带血中具有自我更新和分化能力的稀有细胞群,进入全谱位的血细胞。骨髓HSC移植已被认为是某些疾病治疗的理想选择,包括血液疾病,白血病,免疫缺陷,骨髓衰竭综合征,遗传缺陷,如月经,镰状细胞贫血,自身免疫疾病和某些固体癌症。在移植之前,已经提出了这些细胞在移植之前的潜在溶液,其抵抗有限数量的干细胞。在这种培养方法中,MSC也已被证明表现出高容量的可溶解介质分泌,有助于HSC的原理生物和治疗活性。此外,已经引入内皮细胞以弥合骨髓中的血液和子组织,以及HSCs再生诱导和存活。实验室环境中的细胞培养需要细胞生长严格控制,以防止污染,对称细胞分裂和最佳条件以获得最大收益率。在这方面,微流体系统提供微量尺度的培养和分析能力。此外,二维培养物不能完全证明在不同组织和器官中发现的细胞外基质,作为三维细胞结构的抽象表示。微流体系统还可以强烈描述物理因素如温度和压力对细胞行为的影响。

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