Recifin A, Initial Example of the Tyr-Lock Peptide Structural Family, Is a Selective Allosteric Inhibitor of
Lauren R H Krumpe1,2, Brice A P Wilson2, Christophe Marchand3
1Basic Science Program, Leidos Biomedical Research, Inc., Frederick National Laboratory for Cancer Research, Frederick, Maryland 21702, United States.
Abstract:
Tyrosyl-DNA phosphodiesterase 1 (TDP1) is a molecular target for the sensitization of cancer cells to the FDA-approved topoisomerase inhibitors topotecan and irinotecan. High-throughput screening of natural product extract and fraction libraries for inhibitors of TDP1 activity resulted in the discovery of a new class of knotted cyclic peptides from the marine sponge Axinella sp. Bioassay-guided fractionation of the source extract resulted in the isolation of the active component which was determined to be an unprecedented 42-residue cysteine-rich peptide named recifin A. The native NMR structure revealed a novel fold comprising a four strand antiparallel β-sheet and two helical turns stabilized by a complex disulfide bond network that creates an embedded ring around one of the strands. The resulting structure, which we have termed the Tyr-lock peptide family, is stabilized by a tyrosine residue locked into three-dimensional space. Recifin A inhibited the cleavage of phosphodiester bonds by TDP1 in a FRET assay with an IC50 of 190 nM. Enzyme kinetics studies revealed that recifin A can specifically modulate the enzymatic activity of full-length TDP1 while not affecting the activity of a truncated catalytic domain of TDP1 lacking the N-terminal regulatory domain (Δ1-147), suggesting an allosteric binding site for recifin A on the regulatory domain of TDP1. Recifin A represents both the first of a unique structural class of knotted disulfide-rich peptides and defines a previously unseen mechanism of TDP1 inhibition that could be productively exploited for potential anticancer applications.
Insights
Researchers discovered recifin A, a novel peptide from a marine sponge, that inhibits tyrosyl-DNA phosphodiesterase 1 (TDP1). This finding offers a new strategy for enhancing cancer therapy effectiveness against topoisomerase inhibitors.
Area of Science:
- Biochemistry
- Natural Product Chemistry
- Structural Biology
Background:
- Tyrosyl-DNA phosphodiesterase 1 (TDP1) is a key target for sensitizing cancer cells to topoisomerase inhibitors like topotecan and irinotecan.
- Natural product screening is a vital strategy for discovering novel therapeutic agents.
Purpose of the Study:
- To identify novel inhibitors of TDP1 activity from natural product libraries.
- To characterize the structure and mechanism of action of newly discovered TDP1 inhibitors.
Main Methods:
- High-throughput screening of marine sponge extracts.
- Bioassay-guided fractionation and isolation of active compounds.
- Nuclear Magnetic Resonance (NMR) spectroscopy for structural determination.
- Förster Resonance Energy Transfer (FRET) assays and enzyme kinetics for activity and mechanism studies.
Main Results:
- Isolation and identification of recifin A, a 42-residue cysteine-rich peptide from *Axinella* sp.
- Structural elucidation revealed a novel 'Tyr-lock' peptide fold stabilized by a unique disulfide bond network.
- Recifin A demonstrated potent TDP1 inhibition (IC50 = 190 nM) via an allosteric mechanism targeting the regulatory domain of TDP1.
Conclusions:
- Recifin A is the first member of a unique structural class of knotted disulfide-rich peptides.
- It represents a novel mechanism of TDP1 inhibition.
- Recifin A holds potential for anticancer applications by enhancing the efficacy of existing chemotherapies.
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