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Hepatotoxicity of Nanoparticle-Based Anti-Cancer Drugs: Insights into Toxicity and Mitigation Strategies
Marcin Skorzynski1, Magdalena Krol2, Agata Braniewska1
1Department of Immunology, Mossakowski Medical Research Institute, Polish Academy of Sciences, Warsaw, Poland.
Abstract:
Despite significant progress in developing novel, efficient nanoparticle-based anticancer drugs, hepatotoxicity remains a major challenge. The liver, as the primary organ responsible for detoxification, is particularly susceptible to nanoparticle accumulation, particularly through the action of Browicz-Kupffer cells (B-KCs) and liver sinusoidal endothelial cells (LSECs). These phagocytic cells accumulate nanoparticles, leading to the production of reactive oxygen species (ROS), interleukin 1 beta (IL-1β) and tumor necrosis factor-alpha (TNF-α), which ultimately cause hepatocyte damage. In recent years, various nanoparticle modification strategies have been investigated to reduce hepatotoxicity. One of the most common and effective approaches is the PEGylation of liposomes and graphene nanoparticles, which decreases their uptake by the liver via the reticuloendothelial system (RES). Other strategies to mitigate hepatotoxicity are also being explored, including the incorporation of negatively charged lipids into liposomes, charge manipulation of inorganic-organic nanoparticles, the use of specific protein-based nanoparticles that selectively bind to cancer cells (thereby reducing hepatic uptake), the use of appropriate viral capsids in the production of virus-like protein-based drugs, and the manipulation of the size of protein, metal and graphene nanoparticles. Moreover, modifications aimed at pH-responsive drug release are employed in liposomes, self-assembled and graphene nanoparticles. This article discusses several types of nanoparticles used as carriers in currently approved therapies and explores potential strategies to minimize their hepatotoxicity.
Insights
Nanoparticle anticancer drugs face liver toxicity challenges. Strategies like PEGylation and size manipulation aim to reduce nanoparticle accumulation in liver cells, minimizing damage.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Toxicology
Background:
- Nanoparticle-based anticancer drugs show promise but cause significant liver toxicity.
- The liver's detoxification role makes it vulnerable to nanoparticle accumulation by Kupffer cells and liver sinusoidal endothelial cells.
- This accumulation triggers inflammatory responses (ROS, IL-1β, TNF-α), leading to hepatocyte damage.
Purpose of the Study:
- To review current nanoparticle drug delivery systems.
- To explore strategies for mitigating nanoparticle-induced hepatotoxicity.
- To discuss potential modifications for safer nanoparticle therapeutics.
Main Methods:
- Review of existing literature on nanoparticle modifications.
- Analysis of strategies to reduce liver uptake and accumulation.
- Discussion of size, charge, and surface modification techniques.
Main Results:
- PEGylation of liposomes and graphene nanoparticles reduces liver uptake via the reticuloendothelial system.
- Strategies like negative lipid incorporation, charge manipulation, and size control show potential.
- pH-responsive drug release mechanisms are being developed for various nanoparticle types.
Conclusions:
- Minimizing nanoparticle accumulation in the liver is crucial for developing safer anticancer therapies.
- Surface modifications and targeted delivery are key to reducing hepatotoxicity.
- Further research into nanoparticle design can enhance therapeutic efficacy while improving safety profiles.
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