Improving the pharmacokinetics, biodistribution and plasma stability of monobodies

Adrian Valentin Dinh-Fricke1, Oliver Hantschel1

  • 1Institute of Physiological Chemistry, Philipps-University of Marburg, Marburg, Germany.

PubMed

Insights

Monobodies show promise for cancer therapy, but have short half-lives. Fusing them with albumin-binding domains (ABD) prolongs their presence in the body, enhancing their potential as novel intracellular cancer treatments.

Area of Science:

  • Biotechnology
  • Oncology
  • Pharmacology

Background:

  • Cancer remains a leading cause of death, with therapy resistance and metastasis posing significant challenges.
  • Targeted anticancer drugs, like therapeutic antibodies, are limited to extracellular targets.
  • Monobodies are engineered protein binders for intracellular targets, but their therapeutic potential is unexplored.

Purpose of the Study:

  • To investigate the pharmacological properties of monobodies for cancer therapy.
  • To engineer monobodies with improved pharmacokinetic profiles for enhanced therapeutic efficacy.
  • To assess the potential of monobody-based therapeutics for intracellular cancer targets.

Main Methods:

  • Assessed plasma stability, toxicity, and pharmacokinetics of monobodies in vivo.
  • Engineered monobody fusions with an albumin-binding domain (ABD).
  • Evaluated the pharmacokinetic properties and target binding of ABD-monobody fusions.

Main Results:

  • Monobodies exhibit high plasma stability and are well-tolerated in mice but have short in vivo half-lives due to rapid renal clearance.
  • ABD-monobody fusions demonstrated increased plasma stability and significantly prolonged in vivo half-lives.
  • ABD-monobodies were not rapidly excreted and did not accumulate in specific organs, maintaining target binding.

Conclusions:

  • Monobodies are promising scaffolds for developing novel intracellular cancer therapeutics.
  • Engineering monobodies with albumin-binding domains (ABD) significantly enhances their pharmacokinetic properties.
  • ABD-monobody fusions offer a versatile platform for targeting intracellular oncoproteins and improving cancer patient outcomes.

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