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Updated: Nov 19, 2025

Functionalized Spirocyclic Heterocycle Synthesis and Cytotoxicity Assay
Published on: February 9, 2021
Angler Peptides: Macrocyclic Conjugates Inhibit p53:MDM2/X Interactions and Activate Apoptosis in Cancer Cells
Grégoire J-B Philippe1,2, Anna Mittermeier3, Nicole Lawrence1,2
1Institute for Molecular Bioscience, The University of Queensland, Brisbane, Queensland 4072, Australia.
Abstract:
Peptides are being developed as targeted anticancer drugs to modulate cytosolic protein-protein interactions involved in cancer progression. However, their use as therapeutics is often limited by their low cell membrane permeation and/or inability to reach cytosolic targets. Conjugation to cell penetrating peptides has been successfully used to improve the cytosolic delivery of high affinity binder peptides, but cellular uptake does not always result in modulation of the targeted pathway. To overcome this limitation, we developed "angler peptides" by conjugating KD3, a noncell permeable but potent and specific peptide inhibitor of p53:MDM2 and p53:MDMX interactions, with a set of cyclic cell-penetrating peptides. We examined their binding affinity for MDM2 and MDMX, the cell entry mechanism, and role in reactivation of the p53 pathway. We identified two angler peptides, cTAT-KD3 and cR10-KD3, able to activate the p53 pathway in cancer cells. cTAT-KD3 entered cells via endocytic pathways, escaped endosomes, and activated the p53 pathway in breast (MCF7), lung (A549), and colon (HCT116) cancer cell lines at concentrations in the range of 1-12 μM. cR10-KD3 reached the cytosol via direct membrane translocation and activated the p53 pathway at 1 μM in all the tested cell lines. Our work demonstrates that nonpermeable anticancer peptides can be delivered into the cytosol and inhibit intracellular cancer pathways when they are conjugated with stable cell penetrating peptides. The mechanistic studies suggest that direct translocation leads to less toxicity, higher cytosol delivery at lower concentrations, and lower dependencies on the membrane of the tested cell line than occurs for an endocytic pathway with endosomal escape. The angler strategy can rescue high affinity peptide binders identified from high throughput screening and convert them into targeted anticancer therapeutics, but investigation of their cellular uptake and cell death mechanisms is essential to confirming modulation of the targeted cancer pathways.
Insights
Angler peptides, combining anticancer peptides with cell-penetrating peptides, effectively deliver therapeutic payloads into cancer cells. This strategy reactivates the p53 pathway, offering a promising approach for targeted cancer therapy.
Area of Science:
- Oncology
- Molecular Biology
- Drug Delivery
Background:
- Peptides show promise as targeted anticancer drugs by modulating protein-protein interactions.
- Limited cell membrane permeation and cytosolic access hinder peptide therapeutic development.
- Current strategies like cell-penetrating peptide conjugation improve delivery but not always pathway modulation.
Purpose of the Study:
- To develop and evaluate "angler peptides" for enhanced cytosolic delivery and anticancer activity.
- To investigate the mechanism of action and efficacy of angler peptides targeting p53:MDM2/MDMX interactions.
- To determine if angler peptides can reactivate the p53 pathway in various cancer cell lines.
Main Methods:
- Conjugation of KD3 (p53:MDM2/MDMX inhibitor) with cyclic cell-penetrating peptides to create angler peptides.
- Assessment of binding affinity to MDM2 and MDMX.
- Analysis of cell entry mechanisms (endocytic vs. direct translocation).
- Evaluation of p53 pathway reactivation in breast, lung, and colon cancer cell lines.
Main Results:
- Two angler peptides, cTAT-KD3 and cR10-KD3, were identified.
- cTAT-KD3 entered cells via endocytosis and activated the p53 pathway (1-12 μM).
- cR10-KD3 translocated directly into the cytosol, activating the p53 pathway at 1 μM in all tested cell lines.
- Direct translocation showed potential for lower toxicity and concentration-dependent efficacy.
Conclusions:
- Angler peptides can successfully deliver nonpermeable anticancer peptides into the cytosol.
- The angler strategy enables the development of targeted anticancer therapeutics from high-affinity binders.
- Mechanistic studies of cellular uptake and cell death are crucial for validating pathway modulation and therapeutic potential.
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