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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.
Abstract:
The lack of clinical response to the alkylating agent temozolomide (TMZ) in pediatric diffuse midline/intrinsic pontine glioma (DIPG) has been associated with O6-methylguanine-DNA-methyltransferase (MGMT) expression and mismatch repair deficiency. Hence, a potent N(3)-propargyl analogue (N3P) was derived, which not only evades MGMT but also remains effective in mismatch repair deficient cells. Due to the poor pharmacokinetic profile of N3P (t1/2 < 1 h) and to bypass the blood-brain barrier, we proposed convection enhanced delivery (CED) as a method of administration to decrease dose and systemic toxicity. Moreover, to enhance N3P solubility, stability, and sustained distribution in vivo, either it was incorporated into an apoferritin (AFt) nanocage or its sulfobutyl ether β-cyclodextrin complex was loaded into nanoliposomes (Lip). The resultant AFt-N3P and Lip-N3P nanoparticles (NPs) had hydrodynamic diameters of 14 vs 93 nm, icosahedral vs spherical morphology, negative surface charge (-17 vs -34 mV), and encapsulating ∼630 vs ∼21000 N3P molecules per NP, respectively. Both NPs showed a sustained release profile and instant uptake within 1 h incubation in vitro. In comparison to the naked drug, N3P NPs demonstrated stronger anticancer efficacy against 2D TMZ-resistant DIPG cell cultures [IC50 = 14.6 (Lip-N3P) vs 32.8 μM (N3P); DIPG-IV) and (IC50 = 101.8 (AFt-N3P) vs 111.9 μM (N3P); DIPG-VI)]. Likewise, both N3P-NPs significantly (P < 0.01) inhibited 3D spheroid growth compared to the native N3P in MGMT+ DIPG-VI (100 μM) and mismatch repair deficient DIPG-XIX (50 μM) cultures. Interestingly, the potency of TMZ was remarkably enhanced when encapsulated in AFt NPs against DIPG-IV, -VI, and -XIX spheroid cultures. Dynamic PET scans of CED-administered zirconium-89 (89Zr)-labeled AFt-NPs in rats also demonstrated substantial enhancement over free 89Zr radionuclide in terms of localized distribution kinetics and retention within the brain parenchyma. Overall, both NP formulations of N3P represent promising approaches for treatment of TMZ-resistant DIPG and merit the next phase of preclinical evaluation.
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.

