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3D 生物打印可建立慢性淋巴细胞白血病细胞的长期 3D 培养模型。

3D Bioprinting Allows the Establishment of Long-Term 3D Culture Model for Chronic Lymphocytic Leukemia Cells.

机构信息

Malignant B Cells Biology and 3D Modelling Unit, Division of Experimental Oncology, IRCCS Ospedale San Raffaele, Milano, Italy.

School of Medicine, Università Vita-Salute San Raffaele, Milano, Italy.

出版信息

Front Immunol. 2021 May 3;12:639572. doi: 10.3389/fimmu.2021.639572. eCollection 2021.

Abstract

Chronic Lymphocytic Leukemia (CLL) represents the most common leukemia in the western world and remains incurable. Leukemic cells organize and interact in the lymphoid tissues, however what actually occurs in these sites has not been fully elucidated yet. Studying primary CLL cells is very challenging due to their short survival in culture and also to the fact that traditional two-dimensional models lack cellular and spatial complexity present . Based on these considerations, we exploited for the first time three-dimensional (3D) bioprinting to advance models for CLL. This technology allowed us to print CLL cells (both primary cells and cell lines) mixed with the appropriate, deeply characterized, hydrogel to generate a scaffold containing the cells, thus avoiding the direct cell seeding onto a precast 3D scaffold and paving the way to more complex models. Using this system, we were able to efficiently 3D bioprint leukemic cells and improve their viability that could be maintained up to 28 days. We monitored over time CLL cells viability, phenotype and gene expression, thus establishing a reproducible long-term 3D culture model for leukemia. Through RNA sequencing (RNAseq) analysis, we observed a consistent difference in gene expression profile between 2D and 3D samples, indicating a different behavior of the cells in the two different culture settings. In particular, we identified pathways upregulated in 3D, at both day 7 and 14, associated with immunoglobulins production, pro-inflammatory molecules expression, activation of cytokines/chemokines and cell-cell adhesion pathways, paralleled by a decreased production of proteins involved in DNA replication and cell division, suggesting a strong adaptation of the cells in the 3D culture. Thanks to this innovative approach, we developed a new tool that may help to better mimic the physiological 3D settings of leukemic cells as well as of immune cells in broader terms. This will allow for a more reliable study of the molecular and cellular interactions occurring in normal and neoplastic conditions , and could also be exploited for clinical purposes to test individual responses to different drugs.

摘要

慢性淋巴细胞白血病(CLL)是西方世界最常见的白血病,目前仍然无法治愈。白血病细胞在淋巴组织中进行组织和相互作用,然而,这些部位实际发生的情况尚未完全阐明。由于 CLL 细胞在培养中存活时间短,以及传统的二维模型缺乏存在的细胞和空间复杂性,因此研究原发性 CLL 细胞极具挑战性。基于这些考虑,我们首次利用三维(3D)生物打印技术来推进 CLL 模型的研究。该技术使我们能够将 CLL 细胞(包括原代细胞和细胞系)与适当的、经过深入表征的水凝胶混合打印,生成包含细胞的支架,从而避免将细胞直接接种到预制的 3D 支架上,并为更复杂的模型铺平道路。使用该系统,我们能够高效地 3D 打印白血病细胞,并提高其存活率,存活率可维持长达 28 天。我们随着时间的推移监测 CLL 细胞的活力、表型和基因表达,从而建立了一种可重复的白血病长期 3D 培养模型。通过 RNA 测序(RNAseq)分析,我们观察到 2D 和 3D 样本之间基因表达谱的一致差异,表明细胞在两种不同培养环境中的行为不同。特别是,我们在 3D 中鉴定出在第 7 天和第 14 天上调的途径,这些途径与免疫球蛋白的产生、促炎分子的表达、细胞因子/趋化因子的激活和细胞-细胞黏附途径相关,同时与涉及 DNA 复制和细胞分裂的蛋白质的产生减少相关,表明细胞在 3D 培养中发生了强烈的适应。通过这种创新方法,我们开发了一种新工具,它可以帮助更好地模拟白血病细胞以及更广泛意义上的免疫细胞的生理 3D 环境。这将有助于更可靠地研究正常和肿瘤条件下发生的分子和细胞相互作用,并可用于临床目的,以测试个体对不同药物的反应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2593/8126722/777c25b8365c/fimmu-12-639572-g001.jpg

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