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Published on: January 7, 2019
Stereospecific targeting of MTH1 by (S)-crizotinib as an anticancer strategy
Kilian V M Huber1, Eidarus Salah2, Branka Radic1
1CeMM Research Center for Molecular Medicine of the Austrian Academy of Sciences, 1090 Vienna, Austria.
Abstract:
Activated RAS GTPase signalling is a critical driver of oncogenic transformation and malignant disease. Cellular models of RAS-dependent cancers have been used to identify experimental small molecules, such as SCH51344, but their molecular mechanism of action remains generally unknown. Here, using a chemical proteomic approach, we identify the target of SCH51344 as the human mutT homologue MTH1 (also known as NUDT1), a nucleotide pool sanitizing enzyme. Loss-of-function of MTH1 impaired growth of KRAS tumour cells, whereas MTH1 overexpression mitigated sensitivity towards SCH51344. Searching for more drug-like inhibitors, we identified the kinase inhibitor crizotinib as a nanomolar suppressor of MTH1 activity. Surprisingly, the clinically used (R)-enantiomer of the drug was inactive, whereas the (S)-enantiomer selectively inhibited MTH1 catalytic activity. Enzymatic assays, chemical proteomic profiling, kinome-wide activity surveys and MTH1 co-crystal structures of both enantiomers provide a rationale for this remarkable stereospecificity. Disruption of nucleotide pool homeostasis via MTH1 inhibition by (S)-crizotinib induced an increase in DNA single-strand breaks, activated DNA repair in human colon carcinoma cells, and effectively suppressed tumour growth in animal models. Our results propose (S)-crizotinib as an attractive chemical entity for further pre-clinical evaluation, and small-molecule inhibitors of MTH1 in general as a promising novel class of anticancer agents.
Insights
Researchers identified MTH1 (NUDT1) as the target of SCH51344 in RAS-driven cancers. The (S)-enantiomer of crizotinib selectively inhibits MTH1, disrupting nucleotide homeostasis and suppressing tumor growth, offering a novel anticancer strategy.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- RAS GTPase signaling is crucial in cancer development.
- The molecular targets of many anti-cancer agents, like SCH51344, are often unknown.
- MTH1 (NUDT1) is a key enzyme in maintaining nucleotide pool integrity.
Purpose of the Study:
- To identify the molecular target of the small molecule SCH51344.
- To explore MTH1 as a potential therapeutic target in RAS-driven cancers.
- To investigate crizotinib enantiomers as MTH1 inhibitors.
Main Methods:
- Chemical proteomic profiling to identify drug targets.
- Loss-of-function and overexpression studies of MTH1 in cancer cells.
- Enzymatic assays, kinome-wide surveys, and co-crystal structures to analyze inhibitor activity and stereospecificity.
- Assessment of DNA damage, repair activation, and tumor growth suppression in preclinical models.
Main Results:
- SCH51344 targets MTH1 (NUDT1), a nucleotide pool sanitizing enzyme.
- MTH1 inhibition impairs KRAS tumor cell growth.
- (S)-crizotinib selectively inhibits MTH1 with high potency, unlike its (R)-enantiomer.
- MTH1 inhibition by (S)-crizotinib causes DNA damage and suppresses tumor growth in vivo.
Conclusions:
- MTH1 is a validated target for RAS-driven cancers.
- (S)-crizotinib is a potent and selective MTH1 inhibitor with therapeutic potential.
- MTH1 inhibitors represent a promising new class of anticancer agents.
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