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Published on: June 23, 2020
Recent advances in peptide-based self-assembled and metal coordinated nanocarriers for targeted cancer drug delivery
1The Shmunis School of Biomedicine and Cancer Research, George S. Wise Faculty of Life Sciences, Tel Aviv University, 6997801 Tel Aviv, Israel.
Abstract:
Despite significant progress in anti-cancer therapies, major challenges persist, such as cytotoxicity, drug resistance, and lack of specificity toward tumour tissues. In recent years, peptide self-assembly has emerged as a powerful strategy in biomedical and cancer research for creating functional nanomaterials with enhanced therapeutic potential. A wide range of self-assembled peptide-based drug delivery systems has been developed for cancer treatment, offering improved efficacy and selectivity of pharmaceutical agents while minimizing toxicity to healthy tissues. Self-assembled peptide nanostructures exhibit excellent versatility, capable of encapsulating both hydrophobic and hydrophilic drugs, and can be engineered to release therapeutic agents at disease sites by incorporating stimuli-responsive elements. This review highlights recent advancements in the design and application of self-assembled peptide nanomaterials, based on both linear and cyclic peptides, as well as the role of metal coordination in enhancing drug delivery performance. We describe the synthesis and functionality of metal-coordinated peptide assemblies, which not only enhance stability and responsiveness but also address existing limitations in self-assembly peptide-based drug delivery, particularly in the context of triggered or site-specific release of anticancer therapeutics. Through this review, we aim to provide a comprehensive outline of recent strategies and innovations in peptide self-assembly for targeted cancer therapy, with a particular emphasis on overcoming current therapeutic challenges.
Insights
Peptide self-assembly creates advanced nanomaterials for cancer therapy, improving drug delivery and reducing side effects. Metal coordination further enhances these peptide nanostructures for targeted cancer treatment.
Area of Science:
- Biomedical Engineering
- Materials Science
- Nanotechnology
Background:
- Current anti-cancer therapies face challenges like toxicity, drug resistance, and poor tumor specificity.
- Peptide self-assembly offers a promising strategy for developing novel nanomaterials in cancer research.
- Existing peptide-based drug delivery systems show potential for enhanced efficacy and reduced toxicity.
Purpose of the Study:
- To review recent advancements in self-assembled peptide nanomaterials for cancer therapy.
- To highlight the role of metal coordination in improving peptide-based drug delivery.
- To outline strategies for overcoming current challenges in targeted cancer treatment.
Main Methods:
- Review of literature on linear and cyclic peptide self-assembly for drug delivery.
- Analysis of metal coordination strategies in peptide nanostructures.
- Discussion of stimuli-responsive elements for triggered drug release.
Main Results:
- Self-assembled peptide nanostructures demonstrate versatility in encapsulating diverse drugs.
- Metal coordination enhances the stability and responsiveness of peptide assemblies.
- These systems offer potential for site-specific and triggered release of anticancer therapeutics.
Conclusions:
- Self-assembled peptide nanomaterials represent a significant advancement in targeted cancer therapy.
- Metal coordination is a key strategy for optimizing peptide-based drug delivery systems.
- Further innovations in peptide self-assembly hold promise for overcoming existing therapeutic limitations.

