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首页> 外文期刊>Biopreservation and biobanking >Cryopreservation of Viable Human Tissues: Renewable Resource for Viable Tissue, Cell Lines, and Organoid Development
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Cryopreservation of Viable Human Tissues: Renewable Resource for Viable Tissue, Cell Lines, and Organoid Development

机译:可行的人体组织的冷冻保存:可再生组织,细胞系和有机素发育

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摘要

The availability of viable human tissues is critical to support translational research focused on personalized care. Most studies have relied on fresh frozen or formalin-fixed paraffin-embedded tissues for histopathology, genomics, and proteomics. Yet, basic, translational, and clinical research downstream assays such as tumor progression/invasion, patient-derived xenograft, organoids, immunoprofiling, and vaccine development still require viable tissue, which are time-sensitive and rare commodities. We describe the generation of two-dimensional (2D) and three-dimensional (3D) cultures to validate a viable freeze cryopreservation technique as a standard method of highest quality specimen preservation. After surgical resection, specimens were minced, placed in CryoStor((TM)) media, and frozen using a slow freezing method (-1 degrees C/min in -80 degrees C) for 24 hours and then stored in liquid nitrogen. After 15-18 months, the tissues were thawed, dissociated into single-cell suspensions, and evaluated for cell viability. To generate primary 2D cultures, cells were plated onto Collagen-/Matrigel-coated plates. To develop 3D cultures (organoids), the cells were plated in reduced serum RPMI media on nonadherent plates or in Matrigel matrix. The epithelial nature of the cells was confirmed by using immunohistochemistry for cytokeratins. DNA and RNA isolation was performed using QIAGEN AllPrep kits. We developed primary lines (2D and 3D) of colon, thyroid, lung, renal, and liver cancers that were positive for cytokeratin staining. 3D lines were developed from the same cohort of tumor types in both suspended media and Matrigel matrix. Multiple freeze-thaw cycles did not significantly alter the viability and growth of 2D and 3D lines. DNA/RNA recovery was similar to its fresh frozen cohort. In this study, we validated 2D and 3D tissue cultures as methods to corroborate the feasibility of viable cryopreservation of tumor tissue. This proof-of-principle study, if more widely implemented, should improve accessibility of human viable tumor tissue/cells in a time-independent manner for many basic, preclinical, and translational assays.
机译:可行的人体组织的可用性对于支持重型研究专注于个性化的护理至关重要。大多数研究依赖于新鲜冷冻或福尔马林固定的石蜡嵌入组织,用于组织病理学,基因组学和蛋白质组学。然而,基本,翻译和临床研究下游测定,如肿瘤进展/侵袭,患者衍生的异种移植物,有机体,免疫处理和疫苗发育仍然需要可行的组织,这是时间敏感和稀有的商品。我们描述了二维(2D)和三维(3D)培养物的产生,以验证可行的冷冻冷冻保存技术作为最高质量标本保存的标准方法。手术切除后,切碎样品,置于低温蒸干酪((TM))培养基中,并使用缓慢冷冻方法(-1℃/ min)冷冻24小时,然后储存在液氮中。 15-18个月后,将组织解离,分离成单细胞悬浮液,并评估细胞活力。为了产生初级2D培养物,将细胞涂覆到胶原/基质胶涂层的板上。为了开发3D培养物(有机体),将细胞在诸如非更裂纹板或基质基质中的血清RPMI培养基中的还原细胞。通过使用免疫组织化学来确认细胞的上皮性质。使用Qiagen Allprep试剂盒进行DNA和RNA分离。我们开发了结肠,甲状腺,肺,肾,肝癌的主要线(2D和3D),对细胞角蛋白染色阳性。 3D线从悬浮介质和基质基质中的相同肿瘤类型开发。多种冻融循环没有显着改变2D和3D线的可行性和生长。 DNA / RNA恢复类似于其新鲜冷冻队列。在本研究中,我们验证了2D和3D组织培养物作为证实可行性冷冻保存的可行性的方法。这种原则上的研究如果更广泛地实施,应以与许多基本,临床前和平晶和转化测定以相同的方式改善人类活肿瘤组织/细胞的可用性。

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