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A Comprehensive Procedure to Evaluate the In Vivo Performance of Cancer Nanomedicines
Published on: March 4, 2017
Nanodiscs: a versatile nanocarrier platform for cancer diagnosis and treatment
Jitender Bariwal1, Hairong Ma1, Guillermo A Altenberg1
1Department of Cell Physiology and Molecular Biophysics, and Center for Membrane Protein Research, School of Medicine, Texas Tech University Health Sciences Center, Lubbock, TX, USA. H.Liang@ttuhsc.edu.
Abstract:
Cancer therapy is a significant challenge due to insufficient drug delivery to the cancer cells and non-selective killing of healthy cells by most chemotherapy agents. Nano-formulations have shown great promise for targeted drug delivery with improved efficiency. The shape and size of nanocarriers significantly affect their transport inside the body and internalization into the cancer cells. Non-spherical nanoparticles have shown prolonged blood circulation half-lives and higher cellular internalization frequency than spherical ones. Nanodiscs are desirable nano-formulations that demonstrate enhanced anisotropic character and versatile functionalization potential. Here, we review the recent development of theranostic nanodiscs for cancer mitigation ranging from traditional lipid nanodiscs encased by membrane scaffold proteins to newer nanodiscs where either the membrane scaffold proteins or the lipid bilayers themselves are replaced with their synthetic analogues. We first discuss early cancer detection enabled by nanodiscs. We then explain different strategies that have been explored to carry a wide range of payloads for chemotherapy, cancer gene therapy, and cancer vaccines. Finally, we discuss recent progress on organic-inorganic hybrid nanodiscs and polymer nanodiscs that have the potential to overcome the inherent instability problem of lipid nanodiscs.
Insights
Nanodiscs offer improved cancer therapy by enhancing drug delivery and enabling early detection. These non-spherical nanocarriers show promise over traditional methods for targeted cancer treatment.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Cancer therapy faces challenges with drug delivery efficiency and non-specific toxicity.
- Nanoparticle shape and size critically influence biodistribution and cellular uptake.
- Non-spherical nanoparticles, like nanodiscs, exhibit superior circulation times and internalization rates.
Purpose of the Study:
- To review advancements in theranostic nanodiscs for cancer therapy.
- To explore nanodisc applications in early cancer detection and diverse therapeutic strategies.
- To discuss novel nanodisc formulations addressing stability limitations.
Main Methods:
- Review of literature on nanodisc development for cancer applications.
- Analysis of nanodisc strategies for drug delivery, gene therapy, and vaccines.
- Examination of synthetic analogues and hybrid nanodisc compositions.
Main Results:
- Nanodiscs facilitate targeted drug delivery, improving therapeutic efficacy.
- Early cancer detection is enhanced through nanodisc-based theranostics.
- Diverse payloads can be incorporated into nanodiscs for multi-modal cancer treatment.
Conclusions:
- Theranostic nanodiscs represent a promising platform for advanced cancer mitigation.
- Ongoing research focuses on synthetic and hybrid nanodiscs for enhanced stability and functionality.
- Nanodiscs offer a versatile approach to overcome current limitations in cancer therapy.

