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Updated: Jun 5, 2026

Inducible and Reversible Dominant-negative (DN) Protein Inhibition
Published on: January 7, 2019
Therapeutic targeting the loss of the birt-hogg-dube suppressor gene
Xiaohong Lu1, Wenbin Wei, Janine Fenton
1Department of Medical and Molecular Genetics, School of Clinical and Experimental Medicine, University of Birmingham; Edgbaston, Birmingham B15 2TT, The United Kingdom.
Abstract:
Brit-Hogg-Dubé (BHD) syndrome, an autosomal dominant familial cancer, is associated with increased risk of kidney cancer. BHD syndrome is caused by loss-of-function mutations in the folliculin (FLCN) protein. To develop therapeutic approaches for renal cell carcinoma (RCC) in BHD syndrome, we adopted a strategy to identify tumor-selective growth inhibition in a RCC cell line with FLCN inactivation. The COMPARE algorithm was used to identify candidate anticancer drugs tested against the NCI-60 cell lines that showed preferential toxicity to low FLCN expressing cell lines. Fifteen compounds were selected and detailed growth inhibition (SRB) assays were done in paired BHD RCC cell lines (UOK257 derived from a patient with BHD). Selective sensitivity of FLCN-null over FLCN-wt UOK257 cells was observed in seven compounds. The most selective growth-inhibitory sensitivity was induced by mithramycin, which showed an approximately 10-fold difference in GI(50) values between FLCN-null (64.2 ± 7.9 nmol/L, n = 3) and FLCN-wt UOK257 cells (634.3 ± 147.9 nmol/L, n = 4). Differential ability to induce caspase 3/7 activity by mithramycin was also detected in a dose-dependent manner. Clonogenic survival studies showed mithramycin to be approximately 10-fold more cytotoxic to FLCN-null than FLCN-wt UOK257 cells (200 nmol/L). Following mithramycin exposure, UOK257-FLCN-null cells were mainly arrested and blocked in S and G(2)-M phases of the cell cycle and low dose of rapamycin (1 nmol/L) potentiated mithramycin sensitivity (1.5-fold in G(2)-M population and 2-fold in G(2)-M period time, 2xGI(50), 48 hours). These results provide a basis for further evaluation of mithramycin as a potential therapeutic drug for RCC associated with BHD.
Insights
Brit-Hogg-Dubé syndrome, a hereditary cancer risk, involves kidney cancer due to FLCN mutations. Mithramycin selectively inhibits growth in BHD kidney cancer cells, showing therapeutic potential for renal cell carcinoma.
Area of Science:
- Oncology
- Genetics
- Pharmacology
Background:
- Brit-Hogg-Dubé (BHD) syndrome is an autosomal dominant disorder increasing kidney cancer risk.
- This syndrome results from loss-of-function mutations in the folliculin (FLCN) gene.
- Developing targeted therapies for BHD-associated renal cell carcinoma (RCC) is crucial.
Purpose of the Study:
- To identify drugs that selectively inhibit the growth of RCC cells with FLCN inactivation.
- To evaluate mithramycin as a potential therapeutic agent for BHD-associated RCC.
Main Methods:
- Utilized the COMPARE algorithm to screen anticancer drugs against NCI-60 cell lines for preferential toxicity to low FLCN-expressing cells.
- Conducted growth inhibition (SRB) assays on paired BHD RCC cell lines (UOK257) with FLCN-null and FLCN-wildtype status.
- Performed clonogenic survival studies and cell cycle analysis following drug exposure.
Main Results:
- Seven compounds showed selective sensitivity in FLCN-null UOK257 cells compared to FLCN-wt cells.
- Mithramycin demonstrated approximately 10-fold greater growth inhibition and cytotoxicity in FLCN-null cells.
- Mithramycin induced cell cycle arrest in S and G(2)-M phases, potentiated by low-dose rapamycin.
Conclusions:
- Mithramycin exhibits selective anti-proliferative effects on FLCN-deficient RCC cells.
- These findings support further investigation of mithramycin for treating RCC in BHD syndrome.
- Combination therapy with rapamycin may enhance mithramycin efficacy.
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