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Published on: March 28, 2021
Identification of repurposed small molecule drugs for chordoma therapy
Menghang Xia1, Ruili Huang, Srilatha Sakamuru
1NIH Chemical Genomics Center, National Center for Advancing Translational Sciences, National Institutes of Health, Bethesda, MD, USA. mxia@mail.nih.gov
Abstract:
Chordoma is a rare, slow growing malignant tumor arising from remnants of the fetal notochord. Surgery is the first choice for chordoma treatment, followed by radiotherapy, although postoperative complications remain significant. Recurrence of the disease occurs frequently due to the anatomy of the tumor location and violation of the tumor margins at the initial surgery. Currently, there are no effective drugs available for patients with chordoma. Due to the rarity of the disease, there is limited opportunity to test agents in clinical trials and no concerted effort to develop agents for chordoma in the pharmaceutical industry. To rapidly and efficiently identify small molecules that inhibit chordoma cell growth, we screened the NCGC Pharmaceutical Collection (NPC) containing approximately 2800 clinically approved and investigational drugs at 15 different concentrations in chordoma cell lines, U-CH1 and U-CH2. We identified a group of drugs including bortezomib, 17-AAG, digitoxin, staurosporine, digoxin, rubitecan, and trimetrexate that inhibited chordoma cell growth, with potencies from 10 to 370 nM in U-CH1 cells, but less potently in U-CH2 cells. Most of these drugs also induced caspase 3/7 activity with a similar rank order as the cytotoxic effect on U-CH1 cells. Cantharidin, digoxin, digitoxin, staurosporine, and bortezomib showed similar inhibitory effect on cell lines and 3 primary chordoma cell cultures. The combination treatment of bortezomib with topoisomerase I and II inhibitors increased the therapeutic potency in U-CH2 and patient-derived primary cultures. Our results provide information useful for repurposing currently approved drugs for chordoma and potential approach of combination therapy.
Insights
Researchers screened drugs to find new chordoma treatments. Several approved drugs, including bortezomib, showed effectiveness in inhibiting chordoma cell growth, offering potential for drug repurposing and combination therapies.
Area of Science:
- Oncology
- Pharmacology
- Drug Discovery
Background:
- Chordoma is a rare, slow-growing malignant tumor originating from fetal notochord remnants.
- Current treatments like surgery and radiotherapy have significant complications and high recurrence rates.
- There are no effective drugs specifically for chordoma, and limited clinical trial opportunities exist due to its rarity.
Purpose of the Study:
- To identify existing drugs that can inhibit chordoma cell growth.
- To explore drug repurposing strategies for chordoma treatment.
- To investigate potential combination therapies for enhanced efficacy.
Main Methods:
- Screened the National Center for Complementary and Integrative Health (NCCIH) Pharmaceutical Collection (NPC) of ~2800 drugs.
- Tested drugs across 15 concentrations in chordoma cell lines (U-CH1 and U-CH2).
- Assessed drug efficacy by measuring inhibition of cell growth and induction of caspase 3/7 activity.
Main Results:
- Identified several drugs, including bortezomib, 17-AAG, digitoxin, staurosporine, digoxin, rubitecan, and trimetrexate, that inhibited chordoma cell growth (10-370 nM potency in U-CH1 cells).
- Observed similar inhibitory effects of cantharidin, digoxin, digitoxin, staurosporine, and bortezomib on cell lines and primary chordoma cultures.
- Combination therapy of bortezomib with topoisomerase inhibitors enhanced therapeutic potency in U-CH2 and patient-derived cultures.
Conclusions:
- Repurposing approved drugs like bortezomib shows promise for chordoma treatment.
- Combination therapies may offer a more potent therapeutic approach for chordoma.
- This study provides a foundation for developing novel therapeutic strategies for chordoma using existing pharmaceuticals.