225Ac- and 213Bi-Substance P Analogues for Glioma Therapy

Leszek Królicki1, Jolanta Kunikowska1, Frank Bruchertseifer2

  • 1Nuclear Medicine Department, Medical University of Warsaw, Warsaw, Poland.

Insights

Targeted alpha therapy using radiolabeled Substance P shows promise for treating recurrent glioblastoma multiforme (GBM). This approach targets both cancer cells and tumor vasculature, offering a new option where standard treatments fail.

Area of Science:

  • Oncology
  • Radiochemistry
  • Neurosurgery

Background:

  • Glioblastoma multiforme (GBM) treatment has seen limited progress due to tumor heterogeneity, infiltrative growth, and the blood-brain barrier.
  • Standard care involves surgery, radiation, and chemotherapy, but tumor recurrence is nearly universal.
  • Recurrent GBM presents significant treatment challenges, necessitating novel therapeutic strategies.

Purpose of the Study:

  • To evaluate targeted alpha therapy (TAT) with intratumoral injection of radiolabeled Substance P (SP) for recurrent malignant gliomas.
  • To explore the potential of SP targeting the NK-1 receptor, which is highly expressed on GBM cells and tumor vasculature.

Main Methods:

  • Investigator-initiated phase I and II studies utilizing intratumoral injection of 213Bi-DOTA-Substance P or 225Ac-DOTAGA-Substance P.
  • Assessment of NK-1 receptor expression on GBM cells and tumor neovasculature.

Main Results:

  • TAT with radiolabeled SP demonstrated favorable outcomes in early-phase studies for malignant gliomas compared to standard therapies.
  • Substance P effectively targets NK-1 receptors on both neoplastic cells and tumor vasculature, allowing for dual targeting.
  • Alpha emitters, like Bismuth-213 and Actinium-225, offer advantageous radiophysical properties for brain tumor treatment over beta emitters.

Conclusions:

  • Targeted alpha therapy with radiolabeled Substance P represents a promising new treatment modality for recurrent glioblastoma multiforme.
  • Further research should focus on optimizing the drug's biological and chemical characteristics and delivery systems for improved intratumoral distribution.