Structure-based discovery of first inhibitors targeting the helicase activity of human PIF1
Mark J A Wever1,2, Francesca R Scommegna3, Sara Egea-Rodriguez4,5
1Edelris, Bioparc, Bioserra 1 Building, 69008 Lyon, France.
Abstract:
PIF1 is a conserved helicase and G4 DNA binding and unwinding enzyme, with roles in genome stability. Human PIF1 (hPIF1) is poorly understood, but its functions can become critical for tumour cell survival during oncogene-driven replication stress. Here we report the discovery, via an X-ray crystallographic fragment screen (XChem), of hPIF1 DNA binding and unwinding inhibitors. A structure was obtained with a 4-phenylthiazol-2-amine fragment bound in a pocket between helicase domains 2A and 2B, with additional contacts to Valine 258 from domain 1A. The compound makes specific interactions, notably through Leucine 548 and Alanine 551, that constrain conformational adjustments between domains 2A and 2B, previously linked to ATP hydrolysis and DNA unwinding. We next synthesized a range of related compounds and characterized their effects on hPIF1 DNA-binding and helicase activity in vitro, expanding the structure activity relationship (SAR) around the initial hit. A systematic analysis of clinical cancer databases is also presented here, supporting the notion that hPIF1 upregulation may represent a specific cancer cell vulnerability. The research demonstrates that hPIF1 is a tractable target through 4-phenylthiazol-2-amine derivatives as inhibitors of its helicase action, setting a foundation for creation of a novel class of anti-cancer therapeutics.
Insights
Researchers discovered novel inhibitors for human PIF1 (hPIF1), a DNA helicase crucial for cancer cell survival under replication stress. These 4-phenylthiazol-2-amine derivatives offer a new therapeutic strategy against cancer.
Area of Science:
- Biochemistry
- Structural Biology
- Cancer Biology
Background:
- PIF1 is a conserved DNA helicase and G4 DNA binding/unwinding enzyme vital for genome stability.
- Human PIF1 (hPIF1) is implicated in tumor cell survival during oncogene-induced replication stress.
Purpose of the Study:
- To discover and characterize inhibitors of human PIF1 (hPIF1) using X-ray crystallography.
- To explore hPIF1 as a potential anti-cancer therapeutic target.
Main Methods:
- X-ray crystallographic fragment screening (XChem) to identify hPIF1 inhibitors.
- Synthesis and in vitro characterization of structure-activity relationships (SAR) for identified inhibitors.
- Analysis of clinical cancer databases to assess hPIF1 relevance in cancer.
Main Results:
- A 4-phenylthiazol-2-amine fragment was identified, binding to hPIF1 and constraining key domain movements essential for DNA unwinding.
- Structure-activity relationship studies confirmed the inhibitory potential of synthesized derivatives.
- Clinical data suggest hPIF1 upregulation is a vulnerability in cancer cells.
Conclusions:
- hPIF1 is a druggable target, with 4-phenylthiazol-2-amine derivatives showing promise as inhibitors of its helicase activity.
- This research lays the groundwork for developing a new class of anti-cancer therapeutics targeting hPIF1.
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