Radionuclide imaging and therapy directed towards the tumor microenvironment: a multi-cancer approach for

Circe D van der Heide1, Simone U Dalm2

  • 1Department of Radiology & Nuclear Medicine, Erasmus MC, Rotterdam, The Netherlands.

Insights

Targeted radionuclide theranostics shows promise for broader cancer treatment. Focusing on the tumor microenvironment (TME) offers universally expressed targets, expanding patient eligibility for nuclear medicine interventions.

Area of Science:

  • Oncology
  • Nuclear Medicine
  • Theranostics

Background:

  • Targeted radionuclide theranostics is crucial in oncology but limited by cancer-specific targets.
  • The tumor microenvironment (TME), comprising stromal cells and extracellular matrix (ECM), presents more universally expressed targets.
  • TME alterations like hypoxia and acidity, along with cellular components (CAFs, macrophages), offer novel therapeutic avenues.

Purpose of the Study:

  • To review current TME targets and radioligands for cancer theranostics.
  • To explore the potential of TME-targeting radioligands for multi-cancer or pan-cancer applications.
  • To identify future developments needed for TME-based radionuclide theranostics.

Main Methods:

  • Literature review of preclinical and clinical studies on TME targets and radioligands.
  • Analysis of radioligands targeting TME processes, ECM, and cellular components.
  • Discussion of current challenges and future directions in TME theranostics.

Main Results:

  • Various radioligands targeting TME components and processes have been developed.
  • TME targets offer potential for broader applicability compared to cancer cell-specific targets.
  • Preclinical and clinical evaluations demonstrate the feasibility of TME-directed theranostics.

Conclusions:

  • The TME is a promising target for developing broadly applicable radionuclide theranostics.
  • Further research into novel TME radioligands is needed to achieve multi-cancer or pan-cancer applications.
  • Developing TME-targeting agents can significantly expand patient access to personalized nuclear medicine interventions.

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