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Surface-enhanced Resonance Raman Scattering Nanoprobe Ratiometry for Detecting Microscopic Ovarian Cancer via Folate Receptor Targeting
Published on: March 25, 2019
Ligand-targeted theranostic nanomedicines against cancer
Virginia J Yao1, Sara D'Angelo1, Kimberly S Butler2
1University of New Mexico Comprehensive Cancer Center, Albuquerque, NM 87131; Division of Molecular Medicine, Department of Internal Medicine, University of New Mexico School of Medicine, Albuquerque, NM 87131.
Abstract:
Nanomedicines have significant potential for cancer treatment. Although the majority of nanomedicines currently tested in clinical trials utilize simple, biocompatible liposome-based nanocarriers, their widespread use is limited by non-specificity and low target site concentration and thus, do not provide a substantial clinical advantage over conventional, systemic chemotherapy. In the past 20years, we have identified specific receptors expressed on the surfaces of tumor endothelial and perivascular cells, tumor cells, the extracellular matrix and stromal cells using combinatorial peptide libraries displayed on bacteriophage. These studies corroborate the notion that unique receptor proteins such as IL-11Rα, GRP78, EphA5, among others, are differentially overexpressed in tumors and present opportunities to deliver tumor-specific therapeutic drugs. By using peptides that bind to tumor-specific cell-surface receptors, therapeutic agents such as apoptotic peptides, suicide genes, imaging dyes or chemotherapeutics can be precisely and systemically delivered to reduce tumor growth in vivo, without harming healthy cells. Given the clinical applicability of peptide-based therapeutics, targeted delivery of nanocarriers loaded with therapeutic cargos seems plausible. We propose a modular design of a functionalized protocell in which a tumor-targeting moiety, such as a peptide or recombinant human antibody single chain variable fragment (scFv), is conjugated to a lipid bilayer surrounding a silica-based nanocarrier core containing a protected therapeutic cargo. The functionalized protocell can be tailored to a specific cancer subtype and treatment regimen by exchanging the tumor-targeting moiety and/or therapeutic cargo or used in combination to create unique, theranostic agents. In this review, we summarize the identification of tumor-specific receptors through combinatorial phage display technology and the use of antibody display selection to identify recombinant human scFvs against these tumor-specific receptors. We compare the characteristics of different types of simple and complex nanocarriers, and discuss potential types of therapeutic cargos and conjugation strategies. The modular design of functionalized protocells may improve the efficacy and safety of nanomedicines for future cancer therapy.
Insights
Targeted nanomedicines offer improved cancer treatment by using specific tumor receptors. Functionalized protocells with modular designs enhance drug delivery, improving efficacy and safety for personalized cancer therapy.
Area of Science:
- Oncology
- Nanomedicine
- Molecular Biology
Background:
- Current nanomedicines for cancer often lack specificity, limiting their clinical advantage over traditional chemotherapy.
- Tumor-specific receptors, identified via phage display, offer novel targets for precise drug delivery.
- Existing liposome-based nanocarriers face challenges in specificity and achieving high concentrations at target sites.
Purpose of the Study:
- To review methods for identifying tumor-specific receptors using phage display and antibody selection.
- To explore the potential of modular functionalized protocells for targeted cancer nanomedicine.
- To discuss various nanocarrier types, therapeutic cargos, and conjugation strategies for improved cancer therapy.
Main Methods:
- Utilizing combinatorial peptide libraries on bacteriophage to identify tumor-specific cell-surface receptors.
- Employing antibody display selection to identify recombinant human single chain variable fragments (scFvs) against identified receptors.
- Reviewing and comparing different nanocarrier types and therapeutic payloads.
Main Results:
- Identification of specific receptors (e.g., IL-11Rα, GRP78, EphA5) overexpressed on tumor cells and associated stroma.
- Demonstration of precise systemic delivery of therapeutic agents via peptides targeting tumor-specific receptors.
- Proposal of a modular functionalized protocell design for adaptable cancer nanomedicine.
Conclusions:
- Functionalized protocells offer a promising modular approach to enhance nanomedicine efficacy and safety in cancer treatment.
- Targeted delivery systems utilizing tumor-specific receptors can overcome limitations of non-specific nanocarriers.
- This strategy allows for tailored cancer therapies and the development of theranostic agents.
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