SCaN: A Screening and Characterization Platform for Nanosuspensions Enables In Vivo Delivery of a Crystalline

Christine S Brugger-Muli1, Snehal M Gaikwad2, Wendy du Bois2

  • 1Protein Processing Section, Center for Structural Biology Center for Cancer Research, National Cancer Institute, National Institutes of Health, Frederick, Maryland 21702, United States.

Insights

A new platform, SCaN, enables testing of poorly soluble cancer drugs like the hRpn13Pru degrader XL44. This formulation strategy successfully demonstrated XL44

Area of Science:

  • Drug discovery and development
  • Nanotechnology in medicine
  • Cancer therapeutics

Background:

  • Proteolysis-targeting chimeras (PROTACs) and degraders targeting the hRpn13 fragment (hRpn13Pru) show promise for cancer treatment.
  • Poor solubility of hRpn13Pru-targeting compounds hinders pharmacokinetic and efficacy studies.
  • The hRpn13Pru degrader XL44 exhibits poor bioavailability due to its crystalline state.

Purpose of the Study:

  • To develop a rapid, cost-effective platform (SCaN) for screening and characterizing small molecule nanosuspensions.
  • To formulate the poorly soluble hRpn13Pru degrader XL44 for in vivo testing.
  • To demonstrate the in vivo efficacy of hRpn13Pru-targeting degraders.

Main Methods:

  • The SCaN platform involves three phases: screening vehicles for nanosuspension formulation, evaluating formulation stability over time, and assessing physical and colloidal stability.
  • Atomic force microscopy was used to analyze the morphology of XL44 nanoparticles.
  • Pharmacokinetic and efficacy studies were conducted in a myeloma xenograft mouse model.

Main Results:

  • The SCaN platform successfully generated stable nanosuspension formulations of the poorly soluble XL44.
  • XL44 nanoparticles were predominantly globular with some rod-like particles.
  • XL44 treatment demonstrated 35% tumor growth inhibition in a myeloma xenograft model at a 48-72 mg/kg regimen.

Conclusions:

  • The SCaN platform enables in vivo testing of poorly soluble drug candidates.
  • This study provides the first in vivo evidence that hRpn13Pru-targeting degraders can inhibit tumor growth.
  • The results motivate further development of potent hRpn13Pru degraders for cancer therapy.

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