Dendrimer size effects on the selective brain tumor targeting in orthotopic tumor models upon systemic administration

Kevin Liaw1,2, Fan Zhang1,3, Antonella Mangraviti4

  • 1Center for Nanomedicine Wilmer Eye Institute, Johns Hopkins School of Medicine Baltimore Maryland USA.

Insights

Larger dendrimers (Generation 6) show enhanced brain tumor targeting and retention compared to smaller ones (Generation 4). This nanomedicine approach improves accumulation and specificity for malignant gliomas.

Area of Science:

  • Nanomedicine
  • Oncology
  • Biomaterials

Background:

  • Malignant gliomas are aggressive primary brain tumors with poor prognosis.
  • Nanomedicine offers targeted delivery of therapeutics to overcome off-target toxicities.
  • Hydroxyl-terminated poly(amidoamine) dendrimers can intrinsically target brain tumors.

Purpose of the Study:

  • To investigate the effect of dendrimer size on brain tumor targeting efficiency.
  • To evaluate dendrimer accumulation, distribution, and retention in orthotopic brain tumor models.
  • To assess the potential of size-optimized dendrimers for malignant glioma treatment.

Main Methods:

  • Utilized two clinically relevant orthotopic brain tumor models (9L rat and GL261 mouse).
  • Compared targeting capabilities of different sized dendrimers (Generation 4 vs. Generation 6).
  • Assessed tumor accumulation, specificity, distribution, and retention at 24 hours post-administration.

Main Results:

  • Increasing dendrimer generation from G4 to G6 significantly enhanced tumor accumulation (~10-fold) and specificity (~2-3 fold).
  • G6 dendrimers exhibited superior tumor retention and longer circulation times due to reduced renal clearance.
  • Dendrimer generation did not negatively impact homogeneous tumor distribution or targeting of tumor-associated macrophages.

Conclusions:

  • Dendrimer size is a critical factor for optimizing brain tumor targeting.
  • Generation 6 dendrimers demonstrate superior efficacy in targeting malignant gliomas.
  • These dendrimers represent a promising, clinically translatable platform for glioma therapy targeting tumor-associated macrophages.

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