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A Comprehensive Procedure to Evaluate the In Vivo Performance of Cancer Nanomedicines
Published on: March 4, 2017
Surface receptor-targeted protein-based nanocarriers for drug delivery: advances in cancer therapy
Panneerselvam Theivendren1, Parasuraman Pavadai2, Suganthan Veerachamy3
1Department of Pharmaceutical Chemistry & Analysis, School of Pharmaceutical Sciences, Vels Institute of Science, Technology & Advanced Studies, Pallavaram, Chennai 600117, India.
Abstract:
Significant progress has been made in cancer therapy with protein-based nanocarriers targeted directly to surface receptors for drug delivery. The nanocarriers are a potentially effective solution for the potential drawbacks of traditional chemotherapy, such as lack of specificity, side effects, and development resistance. Peptides as nanocarriers have been designed based on their biocompatible, biodegradable, and versatile functions to deliver therapeutic agents into cancer cells, reduce systemic toxicity, and maximize therapy efficacy through utilizing targeted ligands such as antibodies, amino acids, vitamins, and other small molecules onto protein-based nanocarriers and thus ensuring that drugs selectively accumulate in the cancer cells instead of healthy organs/drug release at a target site without effects on normal cells, which inherently caused less systemic toxicity/off-target effect. Moreover, their intrinsic protein backbone naturally degradesin vivo, providing another level of safety over synthetic materials. Various issues like immunogenicity, mass production, and quality control must be addressed for widespread use. However, further studies are necessary to perfect protein engineering and improve drug loading, protein modification, and targeting. Thus, it can be concluded that protein-based nanocarriers targeted against the surface receptors would help achieve cancer management in a more focused manner, thus minimizing toxicity. The further development of these nanoparticles could bring a significant change in cancer treatment so that more personalized, targeted, and safe therapies would be available to all patients.
Insights
Protein-based nanocarriers offer a targeted approach to cancer therapy, improving drug delivery and reducing side effects. These biocompatible nanoparticles enhance treatment efficacy by selectively targeting cancer cells, minimizing harm to healthy tissues.
Area of Science:
- Biotechnology
- Nanomedicine
- Oncology
Background:
- Traditional chemotherapy faces challenges including lack of specificity, side effects, and drug resistance.
- Protein-based nanocarriers present a promising alternative for targeted drug delivery in cancer treatment.
Purpose of the Study:
- To explore the potential of protein-based nanocarriers for targeted cancer therapy.
- To highlight the advantages of these nanocarriers over conventional chemotherapy.
Main Methods:
- Designing peptide-based nanocarriers with biocompatible and biodegradable properties.
- Utilizing targeted ligands (antibodies, amino acids, vitamins) for specific cancer cell accumulation.
- Leveraging the natural *in vivo* degradation of protein backbones for enhanced safety.
Main Results:
- Protein-based nanocarriers demonstrate selective drug accumulation in cancer cells, reducing off-target effects and systemic toxicity.
- The inherent biodegradability of protein nanocarriers offers an advantage over synthetic materials.
- Targeted delivery enhances therapeutic efficacy while minimizing side effects.
Conclusions:
- Protein-based nanocarriers show significant potential for improving cancer management through targeted drug delivery.
- Further research in protein engineering, drug loading, and targeting is needed for widespread clinical application.
- These advanced nanoparticles could lead to more personalized, targeted, and safer cancer therapies.
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