Development of Multi-Scale X-ray Fluorescence Tomography for Examination of Nanocomposite-Treated Biological Samples

Si Chen1, Ruben Omar Lastra2, Tatjana Paunesku2

  • 1X-ray Science Division, Advanced Photon Source, Argonne National Laboratory, Lemont, IL 60439, USA.

Cancers
|September 10, 2021
PubMed

Insights

Understanding nanoparticle uptake by cancer cells is crucial. This study introduces multiscale X-ray fluorescence tomography to reveal cell-to-cell differences in nanocomposite uptake, overcoming limitations of traditional imaging methods.

Area of Science:

  • Cancer Nanotechnology
  • Cellular Biology
  • Materials Science

Background:

  • Studying nanomaterial-cell interactions is vital in cancer nanotechnology.
  • Heterogeneity in nanoparticle uptake by cells and subcellular compartments hinders understanding of nanomaterial effects.

Purpose of the Study:

  • To evaluate changes in cell cycle and nanocomposite uptake heterogeneity.
  • To introduce multiscale X-ray fluorescence tomography (XFM) for analyzing nanomaterial uptake at different resolutions.

Main Methods:

  • Flow cytometry was used to assess cell cycle changes after nanocomposite exposure.
  • X-ray fluorescence microscopy (XFM) was employed to study nanocomposite uptake heterogeneity.
  • Serial tomographic imaging at two resolutions (micron-sized beam and 80 nm beam) was performed.

Main Results:

  • Flow cytometry revealed cell cycle alterations associated with nanocomposite uptake.
  • XFM directly imaged metal atoms in metal-oxide nanocomposites, demonstrating uptake heterogeneity.
  • Multiscale XRF tomography provided high-resolution, 3D insights into nanocomposite distribution within cells.

Conclusions:

  • Multiscale XRF tomography offers a powerful approach to study cell-to-cell variations in nanomaterial uptake.
  • This technique overcomes limitations of optical imaging and traditional XFM by enabling detailed, high-resolution 3D analysis.
  • This advancement will significantly enhance the study of cancer nanotechnology and nanomaterial-cell interactions.

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