Viscoelastic differences between isolated and live MCF7 cancer cell nuclei resolved with AFM microrheology.

IF 3.5 2区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Journal of The Royal Society Interface Pub Date : 2025-06-01 Epub Date: 2025-06-18 DOI:10.1098/rsif.2024.0885
Ellen Juel Pørtner, Anna Mularski, Tobias William Jarrett, Stine Lauritzen Sønder, Jesper Nylandsted, Adam Cohen Simonsen
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引用次数: 0

Abstract

Cell nuclei are commonly isolated for mechanobiology studies although isolated nuclei may display viscoelastic properties differing from those of live cells. Nuclear mechanics is generally dependent on the time scale of the applied load and cannot accurately be assessed by a simple elasticity parameter. Active microrheology with an atomic force microscope (AFMMR) is a versatile tool for probing nuclear mechanics and we employ the technique for exploring isolated and live-cell nuclei in MCF7 cells, including the significance of actin depolymerization. We successfully validate the method using polyacrylamide hydrogels with correction for cantilever drag in the fluid. The AFMMR results reveal that isolated and live-cell nuclei are equivalent to within a scaling factor, in their frequency-dependent modulus, with isolated nuclei being softer. The loss tangent reveals a transition from solid- to liquid-like behaviour occurring at higher frequency in isolated than in live-cell nuclei. Viscoelastic modelling using the Jeffreys model describes the frequency-dependent modulus of all measured nuclei. Model parameters display sensitivity to nuclei isolation and to actin depolymerization in live cells. Sections of the Jeffreys circuit can potentially be assigned to internal and external nucleus structures, respectively, thereby establishing a minimal mechanistic framework for interpreting microrheology data on cell nuclei.

用AFM微流变学分析分离和活MCF7癌细胞细胞核的粘弹性差异。
细胞核通常被分离出来用于机械生物学研究,尽管分离的细胞核可能表现出与活细胞不同的粘弹性特性。核力学通常依赖于施加载荷的时间尺度,不能通过简单的弹性参数准确地评估。利用原子力显微镜(AFMMR)进行主动微流变学是一种探索核力学的通用工具,我们利用该技术探索MCF7细胞中的分离细胞核和活细胞核,包括肌动蛋白解聚的意义。我们使用聚丙烯酰胺水凝胶成功地验证了该方法,并对流体中的悬臂阻力进行了校正。AFMMR结果显示,在频率相关模量中,分离细胞核和活细胞核在一个比例因子内等效,分离细胞核更软。损失切线揭示了从固体到液体行为的转变,在分离细胞核中比在活细胞核中发生的频率更高。使用杰弗里斯模型的粘弹性模型描述了所有测量核的频率相关模量。模型参数显示对活细胞中核分离和肌动蛋白解聚的敏感性。Jeffreys电路的部分可能分别被分配到内部和外部核结构,从而建立一个解释细胞核微流变学数据的最小机制框架。
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来源期刊
Journal of The Royal Society Interface
Journal of The Royal Society Interface 综合性期刊-综合性期刊
CiteScore
7.10
自引率
2.60%
发文量
234
审稿时长
2.5 months
期刊介绍: J. R. Soc. Interface welcomes articles of high quality research at the interface of the physical and life sciences. It provides a high-quality forum to publish rapidly and interact across this boundary in two main ways: J. R. Soc. Interface publishes research applying chemistry, engineering, materials science, mathematics and physics to the biological and medical sciences; it also highlights discoveries in the life sciences of relevance to the physical sciences. Both sides of the interface are considered equally and it is one of the only journals to cover this exciting new territory. J. R. Soc. Interface welcomes contributions on a diverse range of topics, including but not limited to; biocomplexity, bioengineering, bioinformatics, biomaterials, biomechanics, bionanoscience, biophysics, chemical biology, computer science (as applied to the life sciences), medical physics, synthetic biology, systems biology, theoretical biology and tissue engineering.
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