Rotational magnetic endosome microrheology: Viscoelastic architecture inside living cells

被引:89
|
作者
Wilhelm, C [1 ]
Gazeau, F [1 ]
Bacri, JC [1 ]
机构
[1] Univ Paris 06, Lab Milieux Desordonnes & Heterogenes, UMR7603 FR2438 Mat & Syst Complexes, F-75005 Paris, France
来源
PHYSICAL REVIEW E | 2003年 / 67卷 / 06期
关键词
D O I
10.1103/PhysRevE.67.061908
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
The previously developed technique of magnetic rotational microrheology [Phys. Rev. E 67, 011504 (2003)] is proposed to investigate the rheological properties of the cell interior. An endogeneous magnetic probe is obtained inside living cells by labeling intracellular compartments with magnetic nanoparticles, following the endocytosis mechanism, the most general pathway used by eucaryotic cells to internalize substances from an extracellular medium. Primarily adsorbed on the plasma membrane, the magnetic nanoparticles are first internalized within submicronic membrane vesicles (100 nm diameter) to finally concentrate inside endocytotic intracellular compartments (0.6 mum diameter). These magnetic endosomes attract each other and form chains within the living cell when submitted to an external magnetic field. Here we demonstrate that these chains of magnetic endosomes are valuable tools to probe the intracellular dynamics at very local scales. The viscoelasticity of the chain microenvironment is quantified in terms of a viscosity eta and a relaxation time tau by analyzing the rotational dynamics of each tested chain in response to a rotation of the external magnetic field. The viscosity eta governs the long time flow of the medium surrounding the chains and the relaxation time tau reflects the proportion of solidlike versus liquidlike behavior (tau=eta/G, where G is the high-frequency shear modulus). Measurements in HeLa cells show that the cell interior is a highly heterogeneous structure, with regions where chains are embedded inside a dense viscoelastic matrix and other domains where chains are surrounded by a less rigid viscoelastic material. When one compound of the cell cytoskeleton is disrupted (microfilaments or microtubules), the intracellular viscoelasticity becomes less heterogeneous and more fluidlike, in the sense of both a lower viscosity and a lower relaxation time.
引用
收藏
页数:12
相关论文
共 50 条
  • [1] Microrheology of viscoelastic solutions studied by magnetic rotational spectroscopy
    Berret, Jean-Francois
    INTERNATIONAL JOURNAL OF NANOTECHNOLOGY, 2016, 13 (8-9) : 597 - 603
  • [3] Rotational microrheology of viscoelastic fluid: Orientational kinetics of magnetic particles in the inertialess approximation
    Raikher, YL
    Rusakov, VV
    COLLOID JOURNAL, 2005, 67 (05) : 610 - 624
  • [4] Rotational Microrheology of Viscoelastic Fluid: Orientational Kinetics of Magnetic Particles in the Inertialess Approximation
    Yu. L. Raikher
    V. V. Rusakov
    Colloid Journal, 2005, 67 : 610 - 624
  • [5] Heteromorphic Polymer Nanoparticles in Response to Rotational Magnetic Fields for Stirring inside Living Cells
    Ishihara, Kazuhiko
    Yoshie, Kensuke
    Inoue, Yuuki
    4TH ANNUAL INTERNATIONAL WORKSHOP ON MATERIALS SCIENCE AND ENGINEERING (IWMSE2018), 2018, 381
  • [6] Scaling the microrheology of living cells
    Fabry, B
    Maksym, GN
    Butler, JP
    Glogauer, M
    Navajas, D
    Fredberg, JJ
    PHYSICAL REVIEW LETTERS, 2001, 87 (14) : 148102/1 - 148102/4
  • [7] Rotational magnetic particles microrheology: The Maxwellian case
    Wilhelm, C
    Browaeys, J
    Ponton, A
    Bacri, JC
    PHYSICAL REVIEW E, 2003, 67 (01):
  • [8] Maneuverability of Magnetic Nanomotors Inside Living Cells
    Pal, Malay
    Somalwar, Neha
    Singh, Anumeha
    Bhat, Ramray
    Eswarappa, Sandeep M.
    Saini, Deepak K.
    Ghosh, Ambarish
    ADVANCED MATERIALS, 2018, 30 (22)
  • [9] Microrheology Inside Cancer Cells on Micropatterened Substrates
    Mandal, Kalpana
    Betz, Timo
    Goud, Bruno
    Manneville, Jean-Baptiste
    BIOPHYSICAL JOURNAL, 2014, 106 (02) : 576A - 576A
  • [10] High Frequency Microrheology of Living Cells
    Rico, Felix
    Rigato, Annafrancesca
    Scheuring, Simon
    BIOPHYSICAL JOURNAL, 2016, 110 (03) : 132A - 132A