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Paralog Specificity Determines Subcellular Distribution, Action Mechanism, and Anticancer Activity of TRAP1
Hye-Kyung Park1, Hanbin Jeong1, Eunhwa Ko2
1Department of Biological Sciences, Ulsan National Institutes of Science and Technology (UNIST) , Ulsan 44919, South Korea.
Abstract:
Although Hsp90 inhibitors can inhibit multiple tumorigenic pathways in cancer cells, their anticancer activity has been disappointingly modest. However, by forcing Hsp90 inhibitors into the mitochondria with mitochondrial delivery vehicles, they were converted into potent drugs targeting the mitochondrial Hsp90 paralog TRAP1. Here, to improve mitochondrial drug accumulation without using the mitochondrial delivery vehicle, we increased freely available drug concentrations in the cytoplasm by reducing the binding of the drugs to the abundant cytoplasmic Hsp90. After analyzing X-ray cocrystal structures, the purine ring of the Hsp90 inhibitor 2 (BIIB021) was modified to pyrazolopyrimidine scaffolds. One pyrazolopyrimidine, 12b (DN401), bound better to TRAP1 than to Hsp90, inactivated the mitochondrial TRAP1 in vivo, and it exhibited potent anticancer activity. Therefore, the rationale and feasible guidelines for developing 12b can potentially be exploited to design a potent TRAP1 inhibitor.
Insights
New Hsp90 inhibitors targeting mitochondrial TRAP1 show potent anticancer activity. By modifying drug structures, researchers enhanced efficacy without needing special delivery vehicles, offering a new strategy for cancer treatment.
Area of Science:
- Molecular Biology
- Cancer Research
- Drug Discovery
Background:
- Heat shock protein 90 (Hsp90) inhibitors show modest anticancer activity due to limited efficacy against cytoplasmic Hsp90.
- Targeting the mitochondrial Hsp90 paralog, TRAP1, with Hsp90 inhibitors can enhance potency.
- Current methods often require mitochondrial delivery vehicles to achieve targeted inhibition.
Purpose of the Study:
- To develop novel Hsp90 inhibitors with improved mitochondrial accumulation without relying on delivery vehicles.
- To design compounds that preferentially bind to and inhibit mitochondrial TRAP1 over cytoplasmic Hsp90.
- To investigate the anticancer efficacy of these novel inhibitors in vitro and in vivo.
Main Methods:
- Structural analysis of Hsp90 inhibitor BIIB021 using X-ray crystallography.
- Modification of the purine ring of BIIB021 to create pyrazolopyrimidine scaffolds.
- In vitro binding assays to assess affinity for TRAP1 versus Hsp90.
- In vivo studies to evaluate TRAP1 inactivation and anticancer activity of the lead compound.
Main Results:
- A novel pyrazolopyrimidine derivative, 12b (DN401), demonstrated enhanced binding affinity for TRAP1 compared to Hsp90.
- Compound 12b effectively inactivated mitochondrial TRAP1 in vivo.
- 12b exhibited potent anticancer activity, suggesting successful targeting of the mitochondrial pathway.
Conclusions:
- Modifying Hsp90 inhibitors to create compounds like 12b offers a strategy to enhance mitochondrial TRAP1 inhibition.
- This approach improves drug accumulation and anticancer efficacy without specialized delivery systems.
- The developed pyrazolopyrimidine scaffold provides a feasible guideline for designing potent TRAP1 inhibitors for cancer therapy.
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