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Manufacture and Drug Delivery Applications of Silk Nanoparticles
Published on: October 8, 2016
Strategies and Recent Advances on Improving Efficient Antitumor of Lenvatinib Based on Nanoparticle Delivery System
Haiqing Wang1, Wentao Bo1, Xielin Feng1
1Department of Hepatopancreatobiliary Surgery, Sichuan Clinical Research Center for Cancer, Sichuan Cancer Hospital and Institute, Affiliated Cancer Hospital of University of Electronic Science and Technology of China, Chengdu, People's Republic of China.
Abstract:
Lenvatinib (LVN) is a potentially effective multiple-targeted receptor tyrosine kinase inhibitor approved for treating hepatocellular carcinoma, metastatic renal cell carcinoma and thyroid cancer. Nonetheless, poor pharmacokinetic properties including poor water solubility and rapid metabolic, complex tumor microenvironment, and drug resistance have impeded its satisfactory therapeutic efficacy. This article comprehensively reviews the uses of nanotechnology in LVN to improve antitumor effects. With the characteristic of high modifiability and loading capacity of the nano-drug delivery system, an active targeting approach, controllable drug release, and biomimetic strategies have been devised to deliver LVN to target tumors in sequence, compensating for the lack of passive targeting. The existing applications and advances of LVN in improving therapeutic efficacy include improving longer-term efficiency, achieving higher efficiency, combination therapy, tracking and diagnosing application and reducing toxicity. Therefore, using multiple strategies combined with photothermal, photodynamic, and immunoregulatory therapies potentially overcomes multi-drug resistance, regulates unfavorable tumor microenvironment, and yields higher synergistic antitumor effects. In brief, the nano-LVN delivery system has brought light to the war against cancer while at the same time improving the antitumor effect. More intelligent and multifunctional nanoparticles should be investigated and further converted into clinical applications in the future.
Insights
Nanotechnology enhances lenvatinib (LVN) efficacy for cancer treatment by improving drug delivery and overcoming resistance. This nano-LVN approach offers improved antitumor effects and reduced toxicity, paving the way for advanced cancer therapies.
Area of Science:
- Oncology
- Nanomedicine
- Pharmacology
Background:
- Lenvatinib (LVN) is a tyrosine kinase inhibitor used for hepatocellular carcinoma, renal cell carcinoma, and thyroid cancer.
- Poor solubility, rapid metabolism, tumor microenvironment complexity, and drug resistance limit LVN's therapeutic efficacy.
- Nanotechnology offers potential solutions to overcome these limitations.
Purpose of the Study:
- To review the application of nanotechnology in improving lenvatinib's (LVN) antitumor effects.
- To explore strategies for enhanced LVN delivery and efficacy using nanocarriers.
- To discuss the potential of nano-LVN in combination therapies and diagnostics.
Main Methods:
- Review of existing literature on nanotechnology-based drug delivery systems for LVN.
- Analysis of active targeting, controlled release, and biomimetic strategies for LVN.
- Examination of combination therapies (photothermal, photodynamic, immunoregulatory) with nano-LVN.
Main Results:
- Nanotechnology enhances LVN's pharmacokinetic properties, improving tumor targeting and drug release.
- Nano-LVN systems demonstrate improved long-term efficiency, higher efficacy, and reduced toxicity.
- Combination strategies with nano-LVN show potential in overcoming multi-drug resistance and regulating the tumor microenvironment.
Conclusions:
- Nano-LVN delivery systems significantly improve antitumor effects and therapeutic efficacy.
- Multifunctional nanoparticles offer promising avenues for advanced cancer treatment.
- Further research and clinical translation of intelligent nano-LVN systems are warranted.
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