Polarization of human iPSC-derived macrophages directs their immunological response to secondary pro-inflammatory stimuli

Maximilian Schinke , Greta Meyer , Anna Rafiei Hashtchin , Miriam Hetzel , Shifaa M. Abdin , Tim Wegner , Adrian Schwarzer , Gesine Hansen , Axel Schambach , Nico Lachmann , Mania Ackermann
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引用次数: 1

Abstract

Macrophages can be found in various tissues and play an important role in organ function by sensing and eradicating pathogens, regulating immune responses and contributing to tissue homeostasis and repair. Nowadays, increasing numbers of macrophage-based cell therapies are entering (pre-) clinical studies e.g. for the treatment of liver cirrhosis. Given limited availability of suitable donors as well as problems with variability in quantities and qualities of human monocytes that can be derived from apheresis, induced pluripotent stem cells (iPSC) offer an attractive source of therapeutic macrophages. However, considering the diverse functions, activation stages and overall plasticity of macrophages, further knowledge about (i) the potential to induce different activation stages in iPSC-derived macrophages (iPSC-Mac) as well as (ii) the stability of these phenotypes upon additional external stimuli is of high relevance. We here demonstrate that iPSC-Mac produced in a scalable differentiation platform can be polarized into defined pro- (M1) and anti-inflammatory (M2) activation stages characterized by specific surface marker expression, cytokine secretion and whole transcriptome analysis, similarly to peripheral blood-derived macrophages. Even more importantly, we show that differentially polarized iPSC-Mac maintained key characteristics of their activation status upon a subsequent inflammatory trigger. Interferon (IFN) γ polarized, M1-iPSC-Mac demonstrated an enhanced inflammatory response after additional lipopolysaccharide (LPS) stimulation, whereas Interleukin (IL)-4 stimulated M2a iPSC-Mac and IL-10/TGFβ primed M2c iPSC-Mac showed a reduced activation upon LPS treatment and maintained expression of anti-inflammatory genes. Together, our data demonstrate that defined polarized iPSC-Mac subsets can be generated. Moreover, these cells maintain key characteristics of their activation profile upon a subsequent inflammatory trigger. Thus, the use of stably polarized iPSC-Mac has the potential to further improve the applicability and efficacy of macrophage-based therapies.

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人ipsc衍生的巨噬细胞的极化指导其对继发性促炎刺激的免疫反应
巨噬细胞存在于各种组织中,通过感知和清除病原体,调节免疫反应,促进组织稳态和修复,在器官功能中发挥重要作用。目前,越来越多的基于巨噬细胞的细胞疗法正在进入(预)临床研究,例如用于治疗肝硬化。鉴于合适供体的可用性有限,以及可从单胞分离获得的人类单核细胞在数量和质量上存在差异的问题,诱导多能干细胞(iPSC)提供了一个有吸引力的治疗性巨噬细胞来源。然而,考虑到巨噬细胞的不同功能、激活阶段和整体可塑性,进一步了解(i)诱导ipsc衍生巨噬细胞(iPSC-Mac)不同激活阶段的潜力以及(ii)这些表型在额外外部刺激下的稳定性是高度相关的。我们在此证明,在可扩展分化平台中产生的iPSC-Mac可以分化为明确的亲(M1)和抗炎(M2)激活阶段,其特征是特定表面标记物表达、细胞因子分泌和全转录组分析,类似于外周血源性巨噬细胞。更重要的是,我们发现差异极化iPSC-Mac在随后的炎症触发下保持其激活状态的关键特征。干扰素(IFN) γ极化后,M1-iPSC-Mac在额外的脂多糖(LPS)刺激后表现出增强的炎症反应,而白细胞介素(IL)-4刺激M2a iPSC-Mac和IL-10/TGFβ引发的M2c iPSC-Mac在LPS处理后表现出活性降低并维持抗炎基因的表达。总之,我们的数据表明可以生成定义极化iPSC-Mac子集。此外,这些细胞在随后的炎症触发下保持其激活概况的关键特征。因此,使用稳定极化的iPSC-Mac有可能进一步提高巨噬细胞治疗的适用性和有效性。
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