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Updated: Jul 16, 2025

Nano-Differential Scanning Fluorimetry for Screening in Fragment-based Lead Discovery
Published on: May 16, 2021
Fragment-based and structure-guided discovery of perforin inhibitors
Jiney Jose1, Ruby H P Law2, Eleanor W W Leung3
1Auckland Cancer Society Research Centre, Faculty of Medical and Health Sciences, The University of Auckland, Private Bag 92019, Auckland, 1142, New Zealand; Maurice Wilkins Centre for Molecular Biodiscovery, A New Zealand Centre for Research Excellence, Auckland, New Zealand.
Abstract:
Perforin is a pore-forming protein whose normal function enables cytotoxic T and natural killer (NK) cells to kill virus-infected and transformed cells. Conversely, unwanted perforin activity can also result in auto-immune attack, graft rejection and aberrant responses to pathogens. Perforin is critical for the function of the granule exocytosis cell death pathway and is therefore a target for drug development. In this study, by screening a fragment library using NMR and surface plasmon resonance, we identified 4,4-diaminodiphenyl sulfone (dapsone) as a perforin ligand. We also found that dapsone has modest (mM) inhibitory activity of perforin lytic activity in a red blood cell lysis assay in vitro. Sequential modification of this lead fragment, guided by structural knowledge of the ligand binding site and binding pose, and supported by SPR and ligand-detected 19F NMR, enabled the design of nanomolar inhibitors of the cytolytic activity of intact NK cells against various tumour cell targets. Interestingly, the ligands we developed were largely inert with respect to direct perforin-mediated red blood cell lysis but were very potent in the context of perforin's action on delivering granzymes in the immune synapse, the context in which it functions physiologically. Our work indicates that a fragment-based, structure-guided drug discovery strategy can be used to identify novel ligands that bind perforin. Moreover, these molecules have superior physicochemical properties and solubility compared to previous generations of perforin ligands.
Insights
Researchers identified dapsone as a perforin ligand and developed potent nanomolar inhibitors. These novel molecules target perforin
Area of Science:
- Immunology
- Molecular Biology
- Drug Discovery
Background:
- Perforin is a crucial pore-forming protein for cytotoxic T and NK cell function.
- Dysregulated perforin activity contributes to autoimmune diseases and graft rejection.
- Perforin is a key target for therapeutic intervention in various conditions.
Purpose of the Study:
- To identify novel perforin ligands using fragment-based screening.
- To develop potent and selective inhibitors of perforin's cytolytic activity.
- To explore structure-guided design for improved perforin-targeting therapeutics.
Main Methods:
- Fragment library screening utilizing NMR and surface plasmon resonance (SPR).
- Structure-guided modification of identified lead compounds.
- In vitro assays including red blood cell lysis and NK cell-mediated cytotoxicity.
- Ligand-detected 19F NMR for binding analysis.
Main Results:
- Identified 4,4-diaminodiphenyl sulfone (dapsone) as a perforin ligand.
- Developed dapsone derivatives with nanomolar inhibitory activity against NK cell cytotoxicity.
- Demonstrated potent inhibition in the context of immune synapse function, not just red blood cell lysis.
- Achieved superior physicochemical properties and solubility compared to prior perforin ligands.
Conclusions:
- Fragment-based, structure-guided drug discovery is effective for identifying perforin ligands.
- Novel nanomolar inhibitors of perforin's cytolytic function were successfully developed.
- These inhibitors show promise for therapeutic applications targeting immune-mediated processes.
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