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Live Imaging of Drug Responses in the Tumor Microenvironment in Mouse Models of Breast Cancer
Published on: March 24, 2013
Rapid assessment of drug response in cancer cells using microwell array and molecular imaging
Min S Wang1, Zhen Luo, Nitin Nitin
1Food Science and Technology Department, University of California, Davis, CA, 95616, USA.
Abstract:
Selection of personalized chemotherapy regimen for individual patients has significant potential to improve chemotherapy efficacy and to reduce the deleterious effects of ineffective chemotherapy drugs. In this study, a rapid and high-throughput in vitro drug response assay was developed using a combination of microwell array and molecular imaging. The microwell array provided high-throughput analysis of drug response, which was quantified based on the reduction in intracellular uptake (2-[N-(7-nitrobenz-2-oxa-1,3-diazol-4-yl)amino]-2-deoxy-D-glucose) (2-NBDG). Using this synergistic approach, the drug response measurement was completed within 4 h, and only a couple thousand cells were needed for quantification. The broader application of this microwell molecular imaging approach was demonstrated by evaluating the drug response of two cancer cell lines, cervical (HeLa) and bladder (5637) cancer cells, to two distinct classes of chemotherapy drugs (cisplatin and paclitaxel). This approach did not require an extended cell culturing period, and the quantification of cellular drug response was 4-16 times faster compared with other cell-microarray drug response studies. Moreover, this molecular imaging approach had comparable sensitivity to traditional cell viability assays, i.e., the MTT assay and propidium iodide labeling of cellular nuclei;and similar throughput results as flow cytometry using only 1,000-2,000 cells. Given the simplicity and robustness of this microwell molecular imaging approach, it is anticipated that the assay can be adapted to quantify drug responses in a wide range of cancer cells and drugs and translated to clinical settings for a rapid in vitro drug response using clinically isolated samples.
Insights
This study introduces a rapid, high-throughput in vitro assay for personalized chemotherapy. The novel microwell molecular imaging method quickly quantifies drug response, aiding effective cancer treatment selection.
Area of Science:
- Biomedical Engineering
- Molecular Imaging
- Cancer Research
Background:
- Personalized chemotherapy selection can improve efficacy and reduce side effects.
- Current drug response assays can be time-consuming and require significant cell numbers.
Purpose of the Study:
- To develop a rapid, high-throughput in vitro drug response assay.
- To quantify chemotherapy efficacy using molecular imaging and microwell arrays.
- To enable faster selection of personalized chemotherapy regimens.
Main Methods:
- Utilized a microwell array for high-throughput analysis.
- Quantified drug response by measuring intracellular uptake of 2-NBDG.
- Validated the assay on cervical (HeLa) and bladder (5637) cancer cells with cisplatin and paclitaxel.
Main Results:
- Drug response measurement completed within 4 hours.
- Required only a few thousand cells for quantification.
- Demonstrated 4-16 times faster quantification compared to other cell-microarray studies.
- Achieved comparable sensitivity to MTT and propidium iodide assays.
- Provided high throughput similar to flow cytometry with fewer cells.
Conclusions:
- The microwell molecular imaging approach is a simple, robust, and rapid method for in vitro drug response assessment.
- This assay can be adapted for various cancer types and chemotherapy drugs.
- Potential for clinical translation to guide personalized cancer treatment decisions.
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