Institute of Biological Information Processing IBI-4, Forschungszentrum Jülich, Jülich, Germany; Laboratory for Soft Matter and Biophysics, KU Leuven, Leuven, Belgium.
Institute of Biological Information Processing and Institute for Advanced Simulation, Forschungszentrum Jülich, Jülich, Germany.
Biophys J. 2023 May 2;122(9):1646-1658. doi: 10.1016/j.bpj.2023.03.030. Epub 2023 Mar 24.
Cells in living organisms are subjected to mechanical strains caused by external forces like overcrowding, resulting in strong deformations that affect cell function. We study the interplay between deformation and crowding of red blood cells (RBCs) in dispersions of nonabsorbing rod-like viruses. We identify a sequence of configurational transitions of RBC doublets, including configurations that can only be induced by long-ranged attraction: highly fluctuating T-shaped and face-to-face configurations at low, and doublets approaching a complete spherical configuration at high, rod concentrations. Complementary simulations are used to explore different energy contributions to deformation as well as the stability of RBC doublet configurations. Our advanced analysis of 3D reconstructed confocal images of RBC doublets quantifies the depletion interaction and the resulting deformation energy. Thus, we introduce a noninvasive, high-throughput platform that is generally applicable to investigate the mechanical response of biological cells to external forces and characterize their mechanical properties.
活细胞会受到外力(如过度拥挤)引起的机械张力,从而产生强烈的变形,影响细胞功能。我们研究了在不吸收棒状病毒的分散体中红细胞(RBC)的变形和拥挤之间的相互作用。我们确定了 RBC 二联体的构象转变序列,包括只能由长程吸引力诱导的构象:在低浓度时高度波动的 T 形和面对面配置,在高浓度时接近完全球形的二联体配置。互补模拟用于探索变形的不同能量贡献以及 RBC 二联体构型的稳定性。我们对 RBC 二联体的 3D 重建共焦图像进行了高级分析,量化了耗尽相互作用和由此产生的变形能。因此,我们引入了一种非侵入性、高通量的平台,可广泛用于研究生物细胞对外力的机械响应并表征其机械特性。