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

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.

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