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Development of a Backbone Cyclic Peptide Library as Potential Antiparasitic Therapeutics Using Microwave Irradiation
Published on: January 27, 2016
Current strategies for the development of peptide-based anti-cancer therapeutics
Corina Borghouts1, Christian Kunz, Bernd Groner
1Georg-Speyer-Haus, Institute for Biomedical Research, Frankfurt am Main, Germany.
Abstract:
The completion of the human genome sequence and the development of new techniques, which allow the visualisation of comprehensive gene expression patterns, has led to the identification of a large number of gene products differentially expressed in tumours and corresponding normal tissues. The task at hand is the sorting of these genes into correlative and causative ones. Correlative genes are merely changed as a consequence of transformation and have no decisive effects upon transformation. In contrast, causative genes play a direct role in the process of cellular transformation and the maintenance of the transformed state, which can be exploited for therapeutic purposes. Oncogenes and tumour suppressor genes are prime targets for the development of new inhibitors and gene therapeutic strategies. However, many target oncogene products do not exhibit enzymatic activity that can be inhibited by conventional small molecular weight compounds. They exert their functions through regulated protein-protein or protein-DNA interactions and might require other compounds for efficient interference with such functions. Peptides are emerging as a novel class of drugs for cancer therapy, which could fulfil these tasks. Peptide therapy aims at the specific inhibition of inappropriately activated oncogenes. This review will focus on the selection procedures, which can be employed to identify useful peptides for the treatment of cancer. Before peptide-based therapeutics can become useful, it will be necessary to increase their stability by modifications or the use of scaffolds. Additionally, various delivery methods including liposomes and particularly the use of protein transduction domains (PTDs) have to be explored. These strategies will yield highly specific and more effective peptides and improve the potential of peptide-based anti-cancer therapeutics.
Insights
Identifying causative genes in cancer is crucial for therapy. This review explores peptide therapeutics as a novel strategy to target oncogenes, discussing selection, stability, and delivery methods for effective cancer treatment.
Area of Science:
- Genomics and Molecular Biology
- Cancer Research
- Drug Discovery and Development
Background:
- Advances in human genome sequencing and gene expression analysis identify numerous differentially expressed genes in tumors.
- Distinguishing between correlative (consequential) and causative (driver) genes is essential for targeted cancer therapies.
- Traditional small molecule inhibitors are often ineffective against oncogene products that function via protein-protein or protein-DNA interactions.
Purpose of the Study:
- To review the selection procedures for identifying peptides with therapeutic potential against cancer.
- To discuss strategies for enhancing peptide stability and delivery for improved anti-cancer efficacy.
Main Methods:
- Focus on selection procedures for identifying therapeutic peptides.
- Exploration of peptide modification and scaffold use to increase stability.
- Investigation of delivery methods, including liposomes and protein transduction domains (PTDs).
Main Results:
- Peptides represent a promising class of drugs for specifically inhibiting activated oncogenes.
- Modifications, scaffolds, and advanced delivery systems can enhance peptide stability and targeting.
- Protein transduction domains (PTDs) show particular promise for improving peptide delivery.
Conclusions:
- Peptide therapy offers a novel approach to target causative oncogenes in cancer.
- Optimizing peptide stability and delivery is critical for developing effective peptide-based anti-cancer therapeutics.
- Further research into peptide selection, modification, and delivery will enhance their clinical potential.
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