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Author

Jamal Shamsara

2 papers indexed here

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Open access Aug 2026

Small molecule inhibitor of orphan GPCR dimerization improves host defense and blood pressure control in mice

Orphan GPCRs of the GPRC5 family regulate macrophage activity and vascular contractility by dimerizing with other GPCRs, but pharmacological modulation of this process has not been explored. We previously identified the dimerization interface of receptor GPRC5B and show here that both its mutation and inhibition by a decoy peptide disturbed the interaction with the prostaglandin E2 receptor EP2 in macrophages, resulting in reduced EP2 signaling, enhanced migration and phagocytosis, and protection from bacterial peritonitis in mice. Furthermore, we show that a similar interface exists in related receptor GPRC5C, and, the same as in GPRC5B, mutation or inhibition by decoy peptide improved host defense. Through a virtual docking screen, we identified a small molecule inhibitor of both GPRC5B and GPRC5C dimerization, K303MP20, and showed that it reduced EP2 signaling, enhanced macrophage activity, and improved host defense in bacterial peritonitis and influenza A infection. Interestingly, K303MP20 not only blocked dimerization between GPRC5B/C and EP2, but also with prostacyclin receptor IP and angiotensin II receptor AT1, resulting in reduced AT1-dependent contraction and enhanced IP-dependent relaxation in human and murine smooth muscle cells. In vivo, K303MP20 did not affect basal blood pressure, but protected mice from angiotensin II–induced hypertension. Taken together, inhibition of orphan GPCR dimerization by small molecules is feasible and improves infection control and arterial hypertension.

Jeonghyeon Kwon, Margherita Persechino, Jingchen Shao et al. · 0 citations
Open access Jul 2026

Single-cell transcriptomics identifies a p21-activated kinase important for survival of the zoonotic parasite Fasciola hepatica

Summary Knowledge on the cell types and cell-specific gene expression of multicellular pathogens facilitates drug discovery and allows gaining a deeper understanding of pathogen biology. By utilizing single-cell RNA sequencing (scRNA-seq), we analyzed 19,581 cells of a globally prevalent parasitic flatworm, the liver fluke Fasciola hepatica, which affects health of both humans and animals. We identified 15 distinct clusters, including stem cells, gonadal, muscle and intestinal cells. Differentiation lineages within this parasite were identified and characterized by integrating RNA velocity and spatial transcriptomics data. Furthermore, an ELF5- and TRPMPZQ-expressing cell cluster was discovered, characterized by high expression of protein kinases, including the p21-activated kinase PAK4. Treatment with a PAK4 inhibitor efficiently killed the parasites. These data provide insight into the cellular composition of a complex multicellular pathogen and demonstrate how gene expression at single-cell resolution can serve as a resource for the identification of new drug targets.

Oliver Puckelwaldt, Svenja Gramberg, Sagar Ajmera et al. · 0 citations

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