Small-Molecule Modulators of HIPK4 Activity and Proteostasis

Abstract Homeodomain-interacting protein kinase 4 (HIPK4) is a dual-specificity kinase that is predominantly expressed in differentiating spermatids, required for sperm development, and a promising target for nonhormonal male contraception. Genetic and functional studies have established an essential role for HIPK4 in spermiogenesis, where it acts at least in part through regulation of the F-actin-scaffolded acroplaxome during spermatid head shaping. The direct molecular targets of HIPK4 and their downstream effectors remain poorly defined, and small-molecule probes would be versatile tools for further investigating HIPK4 functions. Synthetic HIPK4 ligands could also be valuable leads for the development of nonhormonal male contraceptives. Here, we report the discovery of a cyanoquinoline-based series of HIPK4 inhibitors with nanomolar potency. Our lead compounds are selective for HIPK4, both within the HIPK family and across the broader kinome, establishing this scaffold as a useful starting point for probe and lead development. Unexpectedly, we found that a subset of these cyanoquinolines also perturbs HIPK4 proteostasis in a cell-type-specific manner. In spermatids, these compounds induce the formation of detergent-insoluble HIPK4 aggregates and promote interactions between this kinase and the autophagy receptor Tax1-binding protein 1 (TAX1BP1), potentially reinforcing a native mechanism of HIPK4 regulation. Together, our findings establish cyanoquinoline ligands as a new chemotype for probing HIPK4 biology and advancing male contraceptive discovery.

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Publication Details

Journal
Journal of the American Chemical Society
Published
2026-10-05
DOI
https://doi.org/10.1021/jacs.6c10097
Primary Topic
Sperm and Testicular Function
Type
article
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article

Small-Molecule Modulators of HIPK4 Activity and Proteostasis

Thomas D.Y. Chung, Riley K. Togashi, Stefan Knapp, Zaile Zhuang et al.
Journal of the American Chemical Society
Sperm and Testicular Function
article

Small-Molecule Modulators of HIPK4 Activity and Proteostasis

Thomas D.Y. Chung, Riley K. Togashi, Stefan Knapp, Zaile Zhuang, Athina Zerva, Andrey A. Bobkov, Martin P. Schwalm, Debasmita Saha, Atoosa Emami, Shubhankar Dutta, Lynn Miya Fujimoto, Thomas Hanke, Steven M. Swick, Patrick C. Kearney, Ian Pass, James Ming Chen, Nicolai D. Raig, Fu‐Yue Zeng, Bradley K. Moon, Samuel T. Howard
article en

Abstract

Abstract Homeodomain-interacting protein kinase 4 (HIPK4) is a dual-specificity kinase that is predominantly expressed in differentiating spermatids, required for sperm development, and a promising target for nonhormonal male contraception. Genetic and functional studies have established an essential role for HIPK4 in spermiogenesis, where it acts at least in part through regulation of the F-actin-scaffolded acroplaxome during spermatid head shaping. The direct molecular targets of HIPK4 and their downstream effectors remain poorly defined, and small-molecule probes would be versatile tools for further investigating HIPK4 functions. Synthetic HIPK4 ligands could also be valuable leads for the development of nonhormonal male contraceptives. Here, we report the discovery of a cyanoquinoline-based series of HIPK4 inhibitors with nanomolar potency. Our lead compounds are selective for HIPK4, both within the HIPK family and across the broader kinome, establishing this scaffold as a useful starting point for probe and lead development. Unexpectedly, we found that a subset of these cyanoquinolines also perturbs HIPK4 proteostasis in a cell-type-specific manner. In spermatids, these compounds induce the formation of detergent-insoluble HIPK4 aggregates and promote interactions between this kinase and the autophagy receptor Tax1-binding protein 1 (TAX1BP1), potentially reinforcing a native mechanism of HIPK4 regulation. Together, our findings establish cyanoquinoline ligands as a new chemotype for probing HIPK4 biology and advancing male contraceptive discovery.

Journal of the American Chemical Society
Goethe University Frankfurt (DE), Sanford Burnham Prebys Medical Discovery Institute (US), Stanford University (US)
Openalex Percentile: Top 10%
Sperm and Testicular Function
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