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.
Abstract:
Cancer is a leading cause of death worldwide. Several targeted anticancer drugs entered clinical practice and improved survival of cancer patients with selected tumor types, but therapy resistance and metastatic disease remains a challenge. A major class of targeted anticancer drugs are therapeutic antibodies, but their use is limited to extracellular targets. Hence, alternative binding scaffolds have been investigated for intracellular use and better tumor tissue penetration. Among those, monobodies are small synthetic protein binders that were engineered to bind with high affinity and selectivity to central intracellular oncoproteins and inhibit their signaling. Despite their use as basic research tools, the potential of monobodies as protein therapeutics remains to be explored. In particular, the pharmacological properties of monobodies, including plasma stability, toxicity and pharmacokinetics have not been investigated. Here, we show that monobodies have high plasma stability, are well-tolerated in mice, but have a short half-life in vivo due to rapid renal clearance. Therefore, we engineered monobody fusions with an albumin-binding domain (ABD), which showed enhanced pharmacological properties without affecting their target binding: We found that ABD-monobody fusions display increased stability in mouse plasma. Most importantly, ABD-monobodies have a dramatically prolonged in vivo half-life and are not rapidly excreted by renal clearance, remaining in the blood significantly longer, while not accumulating in specific internal organs. Our results demonstrate the promise and versatility of monobodies to be developed into future therapeutics for cancer treatment. We anticipate that monobodies may be able to extend the spectrum of intracellular targets, resulting in a significant benefit to patient outcome.
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.
Related Concept Videos
Drug Distribution: Plasma Protein Binding
Nonlinear Pharmacokinetics: Bioavailability and Protein-Drug Binding
To quantify the extent of bioavailability, pharmacologists often use a parameter called .
Drug Biotransformation: Overview
Biopharmaceutics and Pharmacokinetics: Overview
Factors Affecting Dissolution: Drug Permeability, Stability and Stereochemistry
Hybridoma Technology
Hybridoma Selection
Commonly used fusion techniques — electroporation,...


