Chemosensitization of Temozolomide-Resistant Pediatric Diffuse Midline Glioma Using Potent Nanoencapsulated Forms of

Vahid Heravi Shargh, Jeni Luckett, Kaouthar Bouzinab

  • 1Wales Research and Diagnostic PET Imaging Centre, School of Medicine, Cardiff University, Cardiff, CF14 4XN, United Kingdom.

Insights

New nanoparticles deliver a potent drug (N3P) to treat temozolomide-resistant pediatric brain tumors. These nanoparticles bypass resistance mechanisms and show enhanced efficacy in preclinical models.

Area of Science:

  • Nanomedicine
  • Pediatric Oncology
  • Drug Delivery Systems

Background:

  • Pediatric diffuse midline/intrinsic pontine glioma (DIPG) exhibits poor response to temozolomide (TMZ).
  • Resistance is linked to O6-methylguanine-DNA-methyltransferase (MGMT) expression and mismatch repair deficiency.
  • A novel N3-propargyl analogue (N3P) drug circumvents these resistance mechanisms.

Purpose of the Study:

  • To develop nanoparticle formulations of N3P for improved delivery and efficacy against TMZ-resistant DIPG.
  • To evaluate the pharmacokinetic profile and anticancer activity of N3P nanoparticles via convection-enhanced delivery (CED).

Main Methods:

  • N3P was encapsulated in apoferritin (AFt) nanocages (AFt-N3P) or nanoliposomes (Lip-N3P).
  • Nanoparticle characterization included size, morphology, surface charge, and drug loading.
  • In vitro cytotoxicity assays, 3D spheroid growth inhibition, and in vivo PET imaging of CED-administered nanoparticles were performed.

Main Results:

  • Both AFt-N3P and Lip-N3P nanoparticles demonstrated sustained drug release and rapid in vitro uptake.
  • N3P nanoparticles showed enhanced anticancer efficacy against 2D and 3D TMZ-resistant DIPG cell cultures compared to free N3P.
  • PET scans confirmed enhanced brain parenchymal distribution and retention of CED-administered AFt-NPs.

Conclusions:

  • Nanoparticle formulations of N3P, delivered via CED, represent a promising strategy for treating TMZ-resistant DIPG.
  • The developed nanoparticles improve drug solubility, stability, and in vivo distribution, overcoming pharmacokinetic limitations.
  • Further preclinical evaluation is warranted for these novel nanomedicine approaches.

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