Modeling Dose and Schedule Effects of AZD2811 Nanoparticles Targeting Aurora B Kinase for Treatment of Diffuse Large

Nicolas Floc'h1, Susan Ashton2, Douglas Ferguson3

  • 1Bioscience, Oncology, IMED Biotech Unit, AstraZeneca, Cambridge, United Kingdom. simon.t.barry@astrazeneca.com.

Insights

A new nanoparticle formulation of AZD2811, an Aurora B kinase inhibitor, shows promise for treating diffuse large B-cell lymphoma (DLBCL). This formulation allows flexible dosing and scheduling for sustained tumor growth inhibition.

Area of Science:

  • Oncology
  • Pharmacology
  • Nanotechnology

Background:

  • Barasertib (AZD1152), an Aurora B kinase inhibitor pro-drug, demonstrated clinical activity in relapsed/refractory diffuse large B-cell lymphoma (DLBCL).
  • Limitations of repeated intravenous infusions necessitate alternative delivery methods for sustained therapeutic benefit.

Purpose of the Study:

  • To develop and evaluate a nanoparticle formulation of AZD2811 for improved chronic treatment of DLBCL.
  • To optimize the dose and schedule of the AZD2811 nanoparticle for sustained tumor growth inhibition.

Main Methods:

  • Development of a nanoparticle formulation of AZD2811.
  • In vitro assessment of cell growth inhibition across DLBCL cell lines.
  • In vivo studies evaluating antitumor activity, dose intensity, and pharmacokinetic profiles.
  • Exploration of various dosing and scheduling regimens for repeat administration.

Main Results:

  • The AZD2811 nanoparticle demonstrated potent in vitro cell growth inhibition.
  • In vivo studies showed antitumor activity at half the dose intensity of AZD1152.
  • Repeat administration of AZD2811 nanoparticle at 25 mg/kg every 7 days or 50 mg/kg every 2 weeks maintained tumor control.
  • Maximal tumor growth inhibition was achieved with the highest dose intensities.

Conclusions:

  • The AZD2811 nanoparticle formulation offers a flexible approach for DLBCL treatment.
  • Optimized dosing and scheduling are crucial for maximizing therapeutic benefit and sustained tumor growth inhibition.
  • This nanoparticle formulation addresses limitations of previous delivery methods, potentially improving outcomes for DLBCL patients.

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