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Extended Time-lapse Intravital Imaging of Real-time Multicellular Dynamics in the Tumor Microenvironment
Published on: June 12, 2016
In vivo nano-imaging of membrane dynamics in metastatic tumor cells using quantum dots
Kohsuke Gonda1, Tomonobu M Watanabe, Noriaki Ohuchi
1Department of Nano-Medical Science, Graduate School of Medicine, Tohoku University, Aoba-ku, Sendai 980-8575, Japan. gonda@m.tains.tohoku.ac.jp
Abstract:
Changes in membrane morphology and membrane protein dynamics based on its fluidity are critical for cancer metastasis. However, this subject has remained unclear, because the spatial precision of previous in vivo imaging has been limited to the micrometer level and single molecule imaging is impossible. Here, we have imaged the membrane dynamics of tumor cells in mice with a spatial precision of 7-9 nm under a confocal microscope. A metastasis-promoting factor on the cell membrane, protease-activated receptor 1 (PAR1), was labeled with quantum dots conjugated with an anti-PAR1 antibody. Movements of cancer cells and PAR1 during metastasis were clearly observed in vivo. Images used to assess PAR1 dynamics were taken of representative cells for four stages of metastasis; i.e. cancer cells far from blood vessels in tumor, near the vessel, in the bloodstream, and adherent to the inner vascular surface in the normal tissues near tumor were photographed. The diffusion constant of PAR1 in static cells far from tumor blood vessels was smaller than in moving cells near the vessels and in the bloodstream. The diffusion constant of cells adhering to the inner vascular surface in the normal tissues was also very small. Cells formed membrane protrusion during migration. The PAR1 diffusion constant on these pseudopodia was greater than in other membrane regions in the same cell. Thus, the dynamics of PAR1 movement showed that membrane fluidity increases during intravasation, reaches a peak in the vessel, decreases during extravasation, and is also higher at locally formed pseudopodia.
Insights
Cancer cell membrane fluidity, crucial for metastasis, was imaged in vivo with nanoscale precision. Protease-activated receptor 1 (PAR1) dynamics revealed significant changes in membrane fluidity during cancer cell migration and invasion.
Area of Science:
- Cell Biology
- Cancer Research
- Biophysics
Background:
- Membrane fluidity is critical for cancer metastasis.
- Previous in vivo imaging lacked spatial precision for observing membrane dynamics.
- Single molecule imaging of membrane dynamics in vivo has been impossible.
Purpose of the Study:
- To image in vivo membrane dynamics of tumor cells with nanoscale precision.
- To investigate the role of protease-activated receptor 1 (PAR1) in cancer cell metastasis.
- To correlate membrane fluidity changes with different stages of cancer metastasis.
Main Methods:
- Utilized confocal microscopy for in vivo imaging of tumor cells in mice.
- Labeled protease-activated receptor 1 (PAR1) with quantum dots conjugated to an anti-PAR1 antibody.
- Assessed PAR1 dynamics at four metastatic stages: tumor, near vessel, bloodstream, and vascular adhesion.
Main Results:
- Observed nanoscale (7-9 nm) spatial precision in imaging membrane dynamics.
- PAR1 diffusion constant was lower in static tumor cells and higher in migrating cells and those in the bloodstream.
- Membrane fluidity increased during intravasation, peaked in the bloodstream, and decreased during extravasation.
Conclusions:
- In vivo imaging with nanoscale precision reveals dynamic changes in membrane fluidity during cancer metastasis.
- PAR1 dynamics serve as an indicator of membrane fluidity changes critical for cancer cell migration and invasion.
- Increased membrane fluidity in pseudopodia facilitates cancer cell movement and metastasis.

