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Published on: September 13, 2022
Rationally Screened and Designed ABCG2-Binding Aptamers for Targeting Cancer Stem Cells and Reversing Multidrug
Yanyan Ma1, Zhanchen Guo1, Chuanwen Fan2
1State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing 210023, China.
Abstract:
The ATP-binding cassette, subfamily G, isoform 2 protein (ABCG2), as an important member of ABC transporters, plays a key role in multidrug resistance (MDR) in cancer and has been widely considered as a marker of cancer stem cells (CSC). Reagents capable of simultaneously targeting ABCG2 and reversing MDR have great clinical application values, but their development is highly challenging. Herein, ABCG2 glycosylated extracellular region-binding aptamers were efficiently screened by a cladded molecularly imprinted polymer (cMIP)-based in vitro screening method and further rationally engineered into cyclic bivalent aptamers. Experiments showed that both the monovalent and cyclic bivalent aptamers could specifically bind ABCG2 and thereby specially target CSC of human colorectal carcinomas (CoCSC), while the latter could effectively reverse MDR in drug-resistant liver cancer cells (HepG2/ADR). Different from currently predominant small molecule inhibitors, the reversal of MDR relied on a different mechanism; the cyclic bivalent aptamers bound the two monomers of ABCG2 dimers simultaneously and thereby blocked the ABCG2-mediated drug-pumping channel, resulting in increased intracellular accumulation of substrate drugs. This study opened a new access to the development of affinity reagents for targeting CSC and reversing MDR, holding great prospects in cancer diagnosis and treatment.
Insights
New aptamers targeting ABCG2 (ATP-binding cassette, subfamily G, isoform 2) can target cancer stem cells and reverse multidrug resistance by blocking drug efflux, offering new cancer treatment strategies.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- ATP-binding cassette, subfamily G, isoform 2 (ABCG2) is crucial in cancer multidrug resistance (MDR) and marks cancer stem cells (CSCs).
- Developing reagents that target ABCG2 and reverse MDR simultaneously is clinically valuable but challenging.
Purpose of the Study:
- To develop novel aptamers for targeting ABCG2 and reversing MDR.
- To investigate the mechanism of MDR reversal by engineered aptamers.
Main Methods:
- Screening of ABCG2 extracellular region-binding aptamers using a cladded molecularly imprinted polymer (cMIP) method.
- Engineering of monovalent aptamers into cyclic bivalent aptamers.
- Evaluation of aptamer binding specificity, CSC targeting, and MDR reversal in cancer cell lines.
Main Results:
- Both monovalent and cyclic bivalent aptamers specifically bind ABCG2 and target colorectal cancer stem cells (CoCSCs).
- Cyclic bivalent aptamers effectively reversed MDR in drug-resistant liver cancer cells (HepG2/ADR).
- MDR reversal occurred via simultaneous binding to ABCG2 dimers, blocking the drug efflux channel and increasing intracellular drug accumulation.
Conclusions:
- Engineered cyclic bivalent aptamers provide a novel approach for targeting CSCs and overcoming MDR.
- This strategy offers a new avenue for cancer diagnosis and treatment with significant clinical potential.
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