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Published on: June 13, 2014
Highly Efficient Photoswitchable Smart Polymeric Nanovehicle for Gene and Anticancer Drug Delivery in Triple-Negative
Rishik Patra1, Satyajit Halder2, Rima Saha1
1Gene Therapy and Tissue Engineering Lab, Department of Polymer Science and Technology, University of Calcutta, 92, A.P.C. Road, Kolkata 700009, India.
Abstract:
Over the past few decades, there has been significant interest in smart drug delivery systems capable of carrying multiple drugs efficiently, particularly for treating genetic diseases such as cancer. Despite the development of various drug delivery systems, a safe and effective method for delivering both anticancer drugs and therapeutic genes for cancer therapy remains elusive. In this study, we describe the synthesis of a photoswitchable smart polymeric vehicle comprising a photoswitchable spiropyran moiety and an amino-acid-based cationic monomer-based block copolymer using reversible addition-fragmentation chain transfer (RAFT) polymerization. This system aims at diagnosing triple-negative breast cancer and subsequently delivering genes and anticancer agents. Triple-negative breast cancer patients have elevated concentrations of Cu2+ ions, making them excellent targets for diagnosis. The polymer can detect Cu2+ ions with a low limit of detection value of 9.06 nM. In vitro studies on doxorubicin drug release demonstrated sustained delivery at acidic pH level similar to the tumor environment. Furthermore, the polymer exhibited excellent blood compatibility even at the concentration as high as 500 μg/mL. Additionally, it displayed a high transfection efficiency of approximately 82 ± 5% in MDA-MB-231 triple-negative breast cancer cells at an N/P ratio of 50:1. It is observed that mitochondrial membrane depolarization and intracellular reactive oxygen species generation are responsible for apoptosis and the higher number of apoptotic cells, which occurred through the arrest of the G2/M phase of the cell cycle were observed. Therefore, the synthesized light-responsive cationic polymer may be an effective system for diagnosis, with an efficient anticancer drug and gene carrier for the treatment of triple-negative breast cancer in the future.
Insights
This study developed a smart polymer for triple-negative breast cancer, detecting copper ions and delivering anticancer drugs and genes. The light-responsive system shows promise for targeted cancer therapy.
Area of Science:
- Polymer Chemistry
- Nanotechnology
- Biomedical Engineering
Background:
- Smart drug delivery systems are crucial for treating complex diseases like cancer.
- Current methods struggle to deliver both drugs and genes effectively and safely.
- Triple-negative breast cancer (TNBC) requires innovative therapeutic strategies.
Purpose of the Study:
- To synthesize a photoswitchable polymeric vehicle for TNBC diagnosis and therapy.
- To create a system capable of detecting Cu2+ ions and delivering anticancer agents and genes.
- To evaluate the polymer's efficacy, safety, and biocompatibility for TNBC treatment.
Main Methods:
- Synthesis of a photoswitchable spiropyran-based block copolymer using RAFT polymerization.
- Cu2+ ion detection using the polymer with a low limit of detection.
- In vitro studies on doxorubicin release, blood compatibility, and gene transfection efficiency in MDA-MB-231 cells.
- Analysis of apoptosis induction and cell cycle arrest.
Main Results:
- The polymer detected Cu2+ ions with a limit of detection of 9.06 nM.
- Sustained doxorubicin release was observed at acidic pH.
- High transfection efficiency (82 ± 5%) was achieved in TNBC cells.
- The polymer demonstrated excellent blood compatibility and induced apoptosis via G2/M phase arrest.
Conclusions:
- The light-responsive cationic polymer shows potential for TNBC diagnosis.
- The system effectively delivers anticancer drugs and therapeutic genes.
- This polymer represents a promising platform for future TNBC theranostics.

