B194:巨噬细胞与具有细胞样力学特性的可变形微粒之间相互作用的定量分析

D. Vorselen, Yifan Wang, M. Footer, W. Cai, J. Theriot
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引用次数: 0

摘要

巨噬细胞能够吞噬各种各样的目标,从细菌到凋亡细胞和癌细胞。尤其是这两种目标之间的硬度差异是惊人的,细菌的硬度是人类细胞的1000倍。吞噬作用也会受到目标刚性的强烈影响,对较软的目标似乎效率较低。然而,机制研究主要集中在硬颗粒的摄取上,目前对巨噬细胞如何适应吞噬机制以有效摄取软靶点知之甚少。在这里,我们开发了可变形的水凝胶微粒,以前所未有的细节研究吞噬作用,使用更准确地模拟细胞物理特性的靶标。我们通过Shirasu多孔玻璃(SPG)膜挤压制造出含有均匀大小的液滴的乳液,其中含有丙烯酰胺、丙烯酰胺和丙烯酸。随后的聚合直接从变形的颗粒形状产生单分散(CV 10pa)。我们观察到吞噬细胞高度局部化的力发挥,并且在吞噬过程中有4个机械上不同的步骤。最初,我们观察到从吞噬杯底向外的推力。在随后的假足延伸期间,大部分变形局限于一个环,该环最初是不规则的,但在杯闭合期间变得均匀。令人惊讶的是,在这些阶段,杯子底部会出现强烈的局部冲击。在杯口闭合后,我们观察到一些最强的力,似乎把被吞没的目标推进了细胞。我们的新方法为吞噬作用中吞噬细胞和靶标之间的机械相互作用提供了前所未有的细节。本文提出的方法有望在体外和体内免疫系统的研究中找到广泛的应用。引用格式:Daan Vorselen, Yifan Wang, Matt Footer, Wei Cai, Julie Theriot。巨噬细胞与具有细胞样力学特性的可变形微粒之间相互作用的定量研究[摘要]。第四届CRI-CIMT-EATI-AACR国际癌症免疫治疗会议:将科学转化为生存;2018年9月30日至10月3日;纽约,纽约。费城(PA): AACR;癌症免疫学杂志,2019;7(2增刊):摘要nr B194。
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Abstract B194: Quantifying the interaction between macrophages and deformable microparticles with cell-like mechanical properties
Macrophages are able to phagocytose vastly different targets, ranging from bacteria to apoptotic and cancer cells. Especially the difference in rigidity between such targets is striking, with bacteria being ~1000 fold stiffer than human cells. Phagocytosis can also be strongly affected by target rigidity and is seemingly less efficient for softer targets. However, mechanistic studies have largely focused on the uptake of stiff particles, and it is currently poorly understood how macrophages adapt the phagocytic mechanism for efficient uptake of soft targets. Here, we developed deformable hydrogel microparticles to study phagocytosis in unprecedented detail, using targets that more accurately mimic cellular physical properties. We used extrusion through Shirasu Porous glass (SPG) membranes to create emulsions with uniformly sized droplets containing acrylamide, bis(acrylamide) and acrylic acid. Subsequent polymerization yields monodisperse (CV 10 Pa) directly from the deformed particle shape. We observed highly localized force exertion by the phagocytes and 4 implied mechanically distinct steps in the phagocytic process. Initially, we observe outward-directed pushing forces from the phagocytic cup base. During subsequent pseudopod extension the majority of the deformation is localized in a ring that is initially irregular, but becomes uniform during cup closure. Surprisingly, strong localized punches at the cup base occur in these stages. After cup closure, we observe some of the strongest forces, seemingly pushing the engulfed target into the cell. Our novel approach gives us unprecedented detail on the mechanical interaction between phagocyte and target in phagocytosis. The presented method here is expected to find broad applications in the study of the immune system in vitro and in vivo. Citation Format: Daan Vorselen, Yifan Wang, Matt Footer, Wei Cai, Julie Theriot. Quantifying the interaction between macrophages and deformable microparticles with cell-like mechanical properties [abstract]. In: Proceedings of the Fourth CRI-CIMT-EATI-AACR International Cancer Immunotherapy Conference: Translating Science into Survival; Sept 30-Oct 3, 2018; New York, NY. Philadelphia (PA): AACR; Cancer Immunol Res 2019;7(2 Suppl):Abstract nr B194.
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