High-resolution 3D visualization of nanomedicine distribution in tumors

Jennifer I Moss1, Hervé Barjat2, Sally-Ann Emmas2

  • 1Bioscience, Discovery, Oncology R&D, AstraZeneca, Cambridge, United Kingdom.

Theranostics
|January 7, 2020
PubMed

Insights

High-resolution imaging reveals tumor vasculature significantly impacts nanomedicine delivery. Vessel density and support influence liposome accumulation and distribution, crucial for anti-cancer nanomedicine translation.

Area of Science:

  • Nanomedicine
  • Tumor Microenvironment
  • Medical Imaging

Background:

  • Clinical translation of anti-cancer nanomedicines requires understanding the Enhanced Permeability and Retention (EPR) effect.
  • Nanomedicine efficacy depends on both tumor accumulation and spatial distribution.
  • Current imaging methods lack resolution to visualize 3D nanomedicine distribution within tumors.

Purpose of the Study:

  • To develop and apply an ex vivo micro computed tomography (µCT) imaging approach.
  • To visualize the intratumoral distribution of contrast agent-loaded liposomes in 3D.
  • To investigate the influence of tumor characteristics on nanomedicine distribution.

Main Methods:

  • Developed an ex vivo micro computed tomography (µCT) imaging method.
  • Visualized intratumoral distribution of PEGylated liposomes loaded with contrast agents.
  • Analyzed liposome distribution in four preclinical tumor models at 17 µm resolution.

Main Results:

  • Ex vivo µCT revealed significant differences in liposome distribution across tumor models.
  • Tumor models with higher pericyte-supported vessel density showed greater liposome accumulation.
  • Vessel support and distribution, along with stromal content, influenced liposome localization within tumors.

Conclusions:

  • Vessel distribution and support are key determinants of nanomedicine accumulation and distribution in tumors.
  • High-resolution 3D imaging is valuable for preclinical nanomedicine research.
  • Tumor vasculature and microenvironment significantly impact nanomedicine localization.

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