Leveraging Structure-Based Design to Overcome Class III RTK Off-Target Activity in the Development of Selective Wild-Type KIT Inhibitors

Abstract Selective KIT inhibition is an effective strategy for treating mast cell-driven diseases, but highly conserved ATP-binding sites in class III RTKs hinder selective inhibitor design. We employed structure-guided medicinal chemistry to optimize a series of potent, selective KIT inhibitors. An initial triazolopyridine hinge-binding motif enabled potent KIT inhibition with high selectivity and, after central linker optimization, led to a “reverse” arylacetamide series with further improved potency and pharmacokinetic properties. Incorporation of a pyrazole-based linker and modification of the hinge-binding motif led to improved potency in the presence of human serum. Further tuning of the terminal aryl substituent mitigated cytochrome P450 time-dependent inhibition and improved kinome selectivity. Crystallography revealed key elements of KIT inhibition and showed that subtle modulation of linker stereoelectronic effects in the gatekeeper region can drive selectivity. These efforts yielded an optimized lead inhibitor with low-nanomolar cellular potency, high KIT selectivity, and properties favorable for chronic therapy.

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Publication Details

Journal
Journal of Medicinal Chemistry
Published
2026-09-04
DOI
https://doi.org/10.1021/acs.jmedchem.6c01334
Citations
1
Primary Topic
Mast cells and histamine
Type
article
Field-Weighted Citation Impact
3.00
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article

Leveraging Structure-Based Design to Overcome Class III RTK Off-Target Activity in the Development of Selective Wild-Type KIT Inhibitors

Karl T. Haelsig, Kelsey E. Sivick, Lixia Jin, Matthew J. Walters et al.
1 citations
Journal of Medicinal Chemistry
Mast cells and histamine
3.00
article

Leveraging Structure-Based Design to Overcome Class III RTK Off-Target Activity in the Development of Selective Wild-Type KIT Inhibitors

Karl T. Haelsig, Kelsey E. Sivick, Lixia Jin, Matthew J. Walters, Guillaume Mata, Anne M. van Abbema, Hyunyoung Moon, Jay P. Powers, Siquan Chen, Jenna L. Jeffrey, Xuelei Yan, Manmohan R. Leleti (8962166), Nigel P. Walker (8682108), Patrick G. Schweickert, Hsin-Ting Huang, David W. Green, Jiang Zhu, Zhang Wang, Stephen W. Young, Xiaoning Zhao
article en
1 citations

Abstract

Abstract Selective KIT inhibition is an effective strategy for treating mast cell-driven diseases, but highly conserved ATP-binding sites in class III RTKs hinder selective inhibitor design. We employed structure-guided medicinal chemistry to optimize a series of potent, selective KIT inhibitors. An initial triazolopyridine hinge-binding motif enabled potent KIT inhibition with high selectivity and, after central linker optimization, led to a “reverse” arylacetamide series with further improved potency and pharmacokinetic properties. Incorporation of a pyrazole-based linker and modification of the hinge-binding motif led to improved potency in the presence of human serum. Further tuning of the terminal aryl substituent mitigated cytochrome P450 time-dependent inhibition and improved kinome selectivity. Crystallography revealed key elements of KIT inhibition and showed that subtle modulation of linker stereoelectronic effects in the gatekeeper region can drive selectivity. These efforts yielded an optimized lead inhibitor with low-nanomolar cellular potency, high KIT selectivity, and properties favorable for chronic therapy.

Journal of Medicinal Chemistry
Profectus Biosciences (United States) (US), Arcadia Biosciences (United States) (US)
Good health and well-being
Openalex Percentile: Top 7%
Mast cells and histamine
3.00
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