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.
Abstract:
Proteolysis-targeting chimeras (PROTACs) and degraders have been developed against the hRpn13 fragment hRpn13Pru that is present in various cancer types. Testing the performance of these hRpn13Pru-targeting compounds in pharmacokinetic and efficacy studies has been stymied, however, by their poor solubility. Here, we develop a rapid and cost-effective platform to Screen and Characterize small molecule Nanosuspensions (SCaN). We discovered that the hRpn13Pru degrader XL44 adopts a crystalline state, preventing its bioavailability. The first phase of SCaN screens vehicles to identify lead XL44 nanosuspension formulations based on particle size consistency, including in biorelevant media, while the second phase evaluates stability over time. The lead nanosuspensions are then advanced to the third phase of SCaN to assess their physical and colloidal stability. This pipeline allows the formulation of poorly soluble compounds for single-dose pharmacokinetic and pilot multidose tumor mouse studies. We additionally analyzed our XL44 formulation morphologically by atomic force microscopy to find that the XL44 nanoparticles are predominantly globular, with a small population of rod-like particles. Using the optimal nanosuspension determined by SCaN, XL44 slowed tumor growth in a myeloma xenograft model at 35% inhibition with a 48-72 mg/kg treatment regimen. This case study is the first in vivo demonstration that hRpn13Pru-targeting degraders can inhibit tumor growth, and the efficacy shown here motivates the development of more potent hRpn13Pru degraders. Broadly, our SCaN platform is designed for poorly soluble drug candidates to allow for pilot in vivo testing.
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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