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Synthesis of Protein Bioconjugates via Cysteine-maleimide Chemistry
Published on: July 20, 2016
Drug Conjugation via Maleimide-Thiol Chemistry Does Not Affect Targeting Properties of Cysteine-Containing Anti-FGFR1
Karolina Jendryczko1, Jakub Rzeszotko1, Mateusz Adam Krzyscik1
1Department of Protein Engineering, University of Wroclaw, Wroclaw 50-383, Poland.
Abstract:
With a wide range of available cytotoxic therapeutics, the main focus of current cancer research is to deliver them specifically to the cancer cells, minimizing toxicity against healthy tissues. Targeted therapy utilizes different carriers for cytotoxic drugs, combining a targeting molecule, typically an antibody, and a highly toxic payload. For the effective delivery of such cytotoxic conjugates, a molecular target on the cancer cell is required. Various proteins are exclusively or abundantly expressed in cancer cells, making them a possible target for drug carriers. Fibroblast growth factor receptor 1 (FGFR1) overexpression has been reported in different types of cancer, but no FGFR1-targeting cytotoxic conjugate has been approved for therapy so far. In this study, the FGFR1-targeting peptide previously described in the literature was reformatted into a peptibody-peptide fusion with the fragment crystallizable (Fc) domain of IgG1. PeptibodyC19 can be effectively internalized into FGFR1-overexpressing cells and does not induce cells' proliferation. The main challenge for its use as a cytotoxic conjugate is a cysteine residue located within the targeting peptide. A standard drug-conjugation strategy based on the maleimide-thiol reaction involves modification of cysteines within the Fc domain hinge region. Applied here, however, may easily result in the modification of the targeting peptide with the drug, limiting its affinity to the target and therefore the potential for specific drug delivery. To investigate if this is the case, we have performed conjugation reactions with different auristatin derivatives (PEGylated and unmodified) under various conditions. By controlling the reduction conditions and the type of cytotoxic payload, different numbers of cysteines were substituted, allowing us to avoid conjugating the drug to the targeting peptide, which could affect its binding to FGFR1. The optimized protocol with PEGylated auristatin yielded doubly substituted peptibodyC19, showing specific cytotoxicity toward the FGFR1-expressing lung cancer cells, with no effect on cells with low FGFR1 levels. Indeed, additional cysteine poses a risk of unwanted modification, but changes in the type of cytotoxic payload and reaction conditions allow the use of standard thiol-maleimide-based conjugation to achieve standard Fc hinge region cysteine modification, analogously to antibody-drug conjugates.
Insights
Researchers developed a novel FGFR1-targeting peptibody-drug conjugate for cancer therapy. Optimized conjugation strategies successfully targeted lung cancer cells while sparing healthy tissues.
Area of Science:
- Oncology
- Biotechnology
- Drug Delivery
Background:
- Targeted cancer therapy aims to deliver cytotoxic drugs specifically to cancer cells, minimizing off-target toxicity.
- Fibroblast growth factor receptor 1 (FGFR1) is overexpressed in various cancers, presenting a potential target for drug delivery systems.
- Existing FGFR1-targeting strategies face challenges in achieving specific drug conjugation without compromising target affinity.
Purpose of the Study:
- To develop and optimize an FGFR1-targeting cytotoxic conjugate for cancer therapy.
- To overcome conjugation challenges posed by a cysteine residue in the targeting peptide.
- To evaluate the specificity and efficacy of the developed conjugate in preclinical models.
Main Methods:
- A peptibody targeting FGFR1 was engineered by fusing a targeting peptide with the Fc domain of IgG1.
- Various auristatin derivatives and conjugation conditions were tested to optimize drug attachment.
- The optimized conjugate was tested for internalization, proliferation effects, and cytotoxicity in FGFR1-expressing and non-expressing cancer cells.
Main Results:
- The engineered peptibody, PeptibodyC19, demonstrated effective internalization into FGFR1-overexpressing cells.
- Optimized conjugation with PEGylated auristatin avoided modification of the targeting peptide's binding site.
- The resulting conjugate exhibited specific cytotoxicity against FGFR1-expressing lung cancer cells, with minimal impact on cells lacking FGFR1.
Conclusions:
- A novel, optimized FGFR1-targeting peptibody-drug conjugate (PeptibodyC19) was successfully developed.
- Controlled conjugation strategies enable specific drug delivery to cancer cells, overcoming previous limitations.
- This approach holds promise for developing targeted cancer therapies with improved efficacy and reduced side effects.
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