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Combined Tumor Environment Triggered Self-Assembling Peptide Nanofibers and Inducible Multivalent Ligand Display for
Weike Chen1, Shuxin Li2, John C Lang1
1Department of Chemistry & Biochemistry, The University of Texas at Arlington, Arlington, TX, 76019, USA.
Abstract:
Many new technologies, such as cancer microenvironment-induced nanoparticle targeting and multivalent ligand approach for cell surface receptors, are developed for active targeting in cancer therapy. While the principle of each technology is well illustrated, most systems suffer from low targeting specificity and sensitivity. To fill the gap, this work demonstrates a successful attempt to combine both technologies to simultaneously improve cancer cell targeting sensitivity and specificity. Specifically, the main component is a targeting ligand conjugated self-assembling monomer precursor (SAM-P), which, at the tumor site, undergoes tumor-triggered cleavage to release the active form of self-assembling monomer capable of forming supramolecular nanostructures. Biophysical characterization confirms the chemical and physical transformation of SAM-P from unimers or oligomers with low ligand valency to supramolecular assemblies with high ligand valency under a tumor-mimicking reductive microenvironment. The in vitro fluorescence assay shows the importance of supramolecular morphology in mediating ligand-receptor interactions and targeting sensitivity. Enhanced targeting specificity and sensitivity can be achieved via tumor-triggered supramolecular assembly and induces multivalent ligand presentation toward cell surface receptors, respectively. The results support this combined tumor microenvironment-induced cell targeting and multivalent ligand display approach, and have great potential for use as cell-specific molecular imaging and therapeutic agents with high sensitivity and specificity.
Insights
This study introduces a novel nanoparticle system that enhances cancer cell targeting by combining tumor microenvironment-triggered assembly with multivalent ligand presentation. This approach significantly improves targeting specificity and sensitivity for cancer therapy and imaging.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Cancer Research
Background:
- Current cancer targeting technologies often exhibit low specificity and sensitivity.
- Existing methods include nanoparticle targeting induced by the tumor microenvironment and multivalent ligand strategies for cell surface receptors.
Purpose of the Study:
- To develop a combined approach for simultaneously enhancing cancer cell targeting sensitivity and specificity.
- To create a system that leverages tumor microenvironment cues for targeted drug delivery or imaging.
Main Methods:
- Conjugation of targeting ligands to self-assembling monomer precursors (SAM-P).
- Induction of tumor-triggered cleavage of SAM-P in a reductive tumor microenvironment.
- Formation of supramolecular nanostructures with high ligand valency.
- Biophysical characterization and in vitro fluorescence assays to evaluate targeting performance.
Main Results:
- SAM-P transforms from low-valency unimers/oligomers to high-valency supramolecular assemblies in a tumor-mimicking reductive environment.
- Supramolecular morphology is crucial for mediating ligand-receptor interactions and targeting sensitivity.
- The combined approach achieved enhanced targeting specificity and sensitivity.
Conclusions:
- Tumor microenvironment-induced supramolecular assembly and multivalent ligand display effectively improve cancer cell targeting.
- This strategy holds significant potential for developing highly sensitive and specific cell-specific molecular imaging and therapeutic agents.
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