Related Experiment Video
Updated: Apr 5, 2026

Uptake of New Lipid-coated Nanoparticles Containing Falcarindiol by Human Mesenchymal Stem Cells
Published on: February 9, 2019
Controllable drug uptake and nongenomic response through estrogen-anchored cyclodextrin drug complex
Juan-Juan Yin1, Stepan P Shumyak2, Christopher Burgess2
1Xiaolan People's Hospital, Southern Medical University, Zhongshan, Guangdong, People's Republic of China ; Department of Pharmaceutical Sciences, College of Pharmacy, University of South Florida, Tampa, FL, USA.
Abstract:
Breast cancer is a leading killer of women worldwide. Cyclodextrin-based estrogen receptor-targeting drug-delivery systems represent a promising direction in cancer therapy but have rarely been investigated. To seek new targeting therapies for membrane estrogen receptor-positive breast cancer, an estrogen-anchored cyclodextrin encapsulating a doxorubicin derivative Ada-DOX (CDE1-Ada-DOX) has been synthesized and evaluated in human breast cancer MCF-7 cells. First, we synthesized estrone-conjugated cyclodextrin (CDE1), which formed the complex CDE1-Ada-DOX via molecular recognition with the derivative adamantane-doxorubicin (Ada-DOX) (Kd =1,617 M(-1)). The structure of the targeting vector CDE1 was fully characterized using (1)H- and (13)C-nuclear magnetic resonance, mass spectrometry, and electron microscopy. CDE1-Ada-DOX showed two-phase drug-release kinetics with much slower release than Ada-DOX. The fluorescence polarization analysis reveals that CDE1-Ada-DOX binds to recombinant human estrogen receptor α fragments with a Kd of 0.027 µM. Competition assay of the drug complex with estrogen ligands demonstrated that estrone and tamoxifen competed with CDE1-Ada-DOX for membrane estrogen receptor binding in MCF-7 cells. Intermolecular self-assembly of CDE1 molecules were observed, showing tail-in-bucket and wire-like structures confirmed by transmission electronic microscopy. CDE1-Ada-DOX had an unexpected lower drug uptake (when the host-guest ratio was >1) than non-targeting drugs in MCF-7 cells due to ensconced ligands in cyclodextrins cavities resulting from the intermolecular self-assembly. The uptake of CDE1-Ada-DOX was significantly increased when the host-guest ratio was adjusted to be less than half at the concentration of CDE1 over 5 µM due to the release of the estrone residues. CDE1 elicited rapid activation of mitogen-activated protein kinases (p44/42 MAPK, Erk1/2) in minutes through phosphorylation of Thr202/Tyr204 in MCF-7 cells. These results demonstrate a targeted therapeutics delivery of CDE1-Ada-DOX to breast cancer cells in a controlled manner and that the drug vector CDE1 can potentially be employed as a molecular tool to differentiate nongenomic from genomic mechanism.
Insights
A novel cyclodextrin-based drug delivery system targets estrogen receptor-positive breast cancer. This system, CDE1-Ada-DOX, shows controlled release and specific binding, offering a new therapeutic strategy for breast cancer treatment.
Area of Science:
- Biochemistry
- Nanotechnology
- Oncology
Background:
- Breast cancer remains a significant global health challenge, particularly for women.
- Targeting estrogen receptors is a key strategy in treating hormone-sensitive breast cancers.
- Existing drug delivery systems often lack specificity and efficiency.
Purpose of the Study:
- To develop and evaluate a novel cyclodextrin-based drug delivery system for targeting membrane estrogen receptor-positive breast cancer.
- To investigate the synthesis, characterization, and therapeutic potential of an estrogen-anchored cyclodextrin encapsulating doxorubicin.
- To explore the drug release kinetics, receptor binding affinity, and cellular uptake of the novel system.
Main Methods:
- Synthesis of estrone-conjugated cyclodextrin (CDE1) and its complexation with adamantane-doxorubicin (Ada-DOX) to form CDE1-Ada-DOX.
- Structural characterization using NMR, mass spectrometry, and electron microscopy.
- Evaluation of drug release kinetics, estrogen receptor binding using fluorescence polarization, and competition assays in MCF-7 cells.
- Assessment of cellular uptake and mitogen-activated protein kinase (MAPK) pathway activation.
Main Results:
- CDE1-Ada-DOX demonstrated controlled, two-phase drug release, slower than Ada-DOX alone.
- The complex exhibited specific binding to estrogen receptor α fragments (Kd = 0.027 µM) and competed with estrogen ligands for receptor binding in MCF-7 cells.
- Intermolecular self-assembly of CDE1 influenced drug uptake, which was enhanced by adjusting the host-guest ratio.
- CDE1 induced rapid activation of the p44/42 MAPK pathway in MCF-7 cells.
Conclusions:
- CDE1-Ada-DOX represents a promising targeted therapeutic delivery system for breast cancer.
- The drug vector CDE1 shows potential as a molecular tool for distinguishing nongenomic from genomic mechanisms in cancer cells.
- This approach offers a controlled and targeted therapeutic strategy for estrogen receptor-positive breast cancer.
More Related Videos
09:39Drug-induced Sensitization of Adenylyl Cyclase: Assay Streamlining and Miniaturization for Small Molecule and siRNA Screening Applications
Published on: January 27, 2014
18:57Models and Methods to Evaluate Transport of Drug Delivery Systems Across Cellular Barriers
Published on: October 17, 2013
Related Concept Videos
Drug Distribution: Tissue Binding
For...
Hepatic Drug Excretion: Enterohepatic Cycling
Post-release drugs and metabolites can be reabsorbed into the body from the intestine. For conjugated metabolites like glucuronides, reabsorption requires enzymatic hydrolysis by intestinal microflora. This...
Mechanisms of Drug Absorption: Paracellular, Transcellular, and Vesicular Transport
However, most drugs use the transcellular route, traversing directly through the cell membranes via two mechanisms: passive and active transport. Passive...
Carrier-Mediated Transport
Active transport involves two types of membrane-spanning transporters: uptake and efflux. Uptake transporters are expressed in the small...
Intrauterine Drug Delivery Systems
Cellular Membranes and Drug Transport
Phospholipids arrange themselves into a bilayer, with hydrophilic heads oriented outward and hydrophobic tails facing inward.