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A Comprehensive Procedure to Evaluate the In Vivo Performance of Cancer Nanomedicines
Published on: March 4, 2017
Progress in Application of Nanotechnology in Sorafenib
Huili Lai1, Liping Zhong1, Yong Huang1
1National Center for International Research of Bio-Targeting Theranostics, Guangxi Key Laboratory of Bio-targeting Theranostics, Collaborative Innovation Center for Targeting Tumor Diagnosis and Therapy, Guangxi Talent Highland of Bio-Targeting Theranostics, Guangxi Medical University, Nanning, Guangxi, 530021, China.
Abstract:
Dysregulation of the tyrosine kinase signaling pathway is closely related to tumor development, and tyrosine kinase inhibitors are important targets for potential anticancer strategies. In particular, sorafenib, as a representative drug of multitarget tyrosine kinase inhibitors, has an important clinical status and is widely used for treating various solid tumors and diabetic complications. However, poor aqueous solubility of sorafenib, poor bioavailability of commonly used oral dose forms, poor accumulation at tumor sites, and severe off-target effects that tend to induce intolerable systemic side effects in patients have greatly reduced its therapeutic efficiency and limited its extensive clinical application. To improve the properties of sorafenib, increase the efficiency of clinical treatment, and overcome the increasingly prominent phenomenon of sorafenib resistance, multiple investigations have been conducted. Numerous studies have reported that the properties of nanomaterials, such as small particle size, large specific surface area, high surface activity and high adsorption capacity, make nanotechnology promising for the construction of ideal sorafenib nanodelivery systems to achieve timed and targeted delivery of sorafenib to tumors, prolong the blood circulation time of the drug, improve the utilization efficiency of the drug and reduce systemic toxic side effects. This review summarizes the progress of research applications in nanotechnology related to sorafenib, discusses the current problems, and expresses expectations for the prospect of clinical applications of sorafenib with improved performance.
Insights
Nanotechnology offers a promising solution to overcome sorafenib
Area of Science:
- Oncology
- Materials Science
- Pharmacology
Background:
- Tyrosine kinase inhibitors (TKIs) like sorafenib are crucial for cancer therapy.
- Sorafenib faces challenges including poor solubility, low bioavailability, and systemic toxicity.
- Sorafenib resistance limits its clinical efficacy.
Purpose of the Study:
- To review the application of nanotechnology in developing improved sorafenib delivery systems.
- To address the limitations of conventional sorafenib formulations.
- To explore strategies for enhancing sorafenib's therapeutic potential and overcoming resistance.
Main Methods:
- Review of existing research on nanotechnology-based sorafenib delivery.
- Analysis of nanomaterial properties for drug delivery applications.
- Discussion of targeted and sustained drug release mechanisms.
Main Results:
- Nanomaterials offer improved properties like small particle size and high surface area for drug delivery.
- Nanotechnology enables targeted delivery of sorafenib to tumors, enhancing efficacy.
- Nanodelivery systems can prolong drug circulation time and reduce systemic side effects.
Conclusions:
- Nanotechnology holds significant promise for improving sorafenib's therapeutic performance.
- Targeted nanodelivery systems can overcome sorafenib's limitations and resistance.
- Further research is expected to advance clinical applications of enhanced sorafenib formulations.

