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Published on: June 13, 2014
A versatile nanoplatform for synergistic combination therapy to treat human esophageal cancer
Xin-Shuai Wang1, De-Jiu Kong1, Tzu-Yin Lin2
1Henan Key Laboratory of Cancer Epigenetics; Cancer Hospital, The First Affiliated Hospital, College of Clinical Medicine, Medical College of Henan University of Science and Technology, Luoyang 471003, China.
Abstract:
One of the major goals of precision oncology is to promote combination therapy to improve efficacy and reduce side effects of anti-cancer drugs based on their molecular mechanisms. In this study, we aimed to develop and validate new nanoformulations of docetaxel (DTX) and bortezomib (BTZ) for targeted combination therapy to treat human esophageal cancer. By leveraging our versatile disulfide cross-linked micelles (DCMs) platform, we developed nanoformulations of DTX and BTZ (named DTX-DCMs and BTZ-DCMs). Their physical properties were characterized; their anti-cancer efficacies and mechanisms of action were investigated in a human esophageal cancer cell line in vitro. Furthermore, the in vitro anti-tumor activities of combination therapies (concurrent drug treatment, sequential drug treatment, and treatment using different ratios of the drugs) were examined in comparison with the single drug treatment and free drug strategies. These drug-loaded nanoparticles were spherical in shape and relatively small in size of approximately 20-22 nm. The entrapment efficiencies of DTX and BTZ into nanoparticles were 82.4% and 84.1%, respectively. The drug release rates of DTX-DCMs and BTZ-DCMs were sustained, and greatly increased in the presence of GSH. These nanodrugs were effectively internalized by KYSE30 esophageal cancer cells, and dose-dependently induced cell apoptosis. We further revealed a strong synergistic effect between DTX-DCMs and BTZ-DCMs against KYSE30 esophageal cancer cells. Sequential combination therapy with DTX-DCMs followed by BTZ-DCMs exhibited the best anti-tumor efficacy in vitro. This study demonstrates that DTX and BTZ could be successfully nanoformulated into disulfide cross-linked micelles. The nanoformulations of DTX and BTZ demonstrate an immense potential for synergistic combination therapy to treat human esophageal cancer.
Insights
New nanoformulations of docetaxel (DTX) and bortezomib (BTZ) show synergistic effects for esophageal cancer. Sequential combination therapy using these disulfide cross-linked micelles (DCMs) demonstrated superior in vitro anti-tumor efficacy.
Area of Science:
- Nanomedicine
- Oncology
- Drug Delivery
Background:
- Precision oncology aims to enhance anti-cancer therapy efficacy and reduce side effects through molecularly targeted combination treatments.
- Developing novel drug delivery systems is crucial for effective cancer treatment strategies.
Purpose of the Study:
- To create and validate new nanoformulations of docetaxel (DTX) and bortezomib (BTZ) for targeted combination therapy in human esophageal cancer.
- To investigate the synergistic anti-cancer effects of these nanoformulations in vitro.
Main Methods:
- Disulfide cross-linked micelles (DCMs) were used to develop nanoformulations of DTX (DTX-DCMs) and BTZ (BTZ-DCMs).
- Physical properties, drug entrapment, release kinetics, cellular uptake, and apoptosis induction were characterized.
- In vitro anti-tumor activities of combination therapies were compared against single-drug and free-drug treatments.
Main Results:
- DTX-DCMs and BTZ-DCMs were spherical nanoparticles (20-22 nm) with high drug entrapment efficiencies (82.4% and 84.1%).
- Sustained drug release was observed, significantly enhanced by glutathione (GSH).
- Nanoformulations were internalized by esophageal cancer cells, inducing dose-dependent apoptosis and demonstrating a strong synergistic effect.
Conclusions:
- DTX and BTZ can be effectively nanoformulated into disulfide cross-linked micelles.
- Sequential combination therapy with DTX-DCMs followed by BTZ-DCMs showed the highest in vitro anti-tumor activity.
- These nanoformulations hold significant potential for synergistic combination therapy against human esophageal cancer.
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