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Small molecule inhibitor of orphan GPCR dimerization improves host defense and blood pressure control in mice
Jeonghyeon Kwon, Margherita Persechino, Jingchen Shao, Jamal Shamsara, Birgit Spitznagel, Isabelle Salwig, Miloslav Sanda, Stefan Offermanns, Peter Kolb, Nina Wettschureck
Jeonghyeon Kwon, Margherita Persechino, Jingchen Shao, Jamal Shamsara, Birgit Spitznagel, Isabelle Salwig, Miloslav Sanda, Stefan Offermanns, Peter Kolb, Nina Wettschureck
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Research Article Immunology Vascular biology

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

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Abstract

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.

Authors

Jeonghyeon Kwon, Margherita Persechino, Jingchen Shao, Jamal Shamsara, Birgit Spitznagel, Isabelle Salwig, Miloslav Sanda, Stefan Offermanns, Peter Kolb, Nina Wettschureck

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Figure 3

GPRC5C resembles GPRC5B with respect to dimerization pattern, effect on cellular cAMP, and knockout phenotypes.

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GPRC5C resembles GPRC5B with respect to dimerization pattern, effect on ...
(A and B) Western blot detection of HA and FLAG signals in lysates of HEK cells expressing FLAG-tagged GPRC5B (left) or GPRC5C (right) in combination with different HA-tagged prostanoid receptors before (“input”) and after immunoprecipitation of GPRC5B-FLAG (“Pulldown FLAG”). (C and D) Butaprost-induced cAMP production was determined in HEK cells transfected with EP2, a cAMP GloSensor plasmid and either control siRNA (siControl) or siRNA directed against GPRC5B or GPRC5C (siG5B or siG5C) (C) or expression vectors encoding GPRC5B or GPRC5C (OE G5B, OE G5C; EV is empty vector) (D) (n = 6). (E) Generation of myeloid-specific GPRC5C-KOs (M-G5c-KO). (F) Knockout efficiency was determined by qRT-PCR (data normalized to Gapdh and controls set to 1) (n = 8, 10). (G and J) Transwell migration of M1 BMDMs (G) and RPMs (J) in response to different chemotactic factors (n = 6). (H, I, and K) Uptake of pHrodo E.coli bioparticles by M0 BMDMs (H and I; n = 24) and RPMs (K; n = 9). (L–N) Fecal peritonitis in control mice and M-G5c-KOs: Body weight change (L), number of bacterial CFU (M) and of CD11b+, F4/80lo, MHCII+, CCR2+ macrophages (N) in peritoneal lavage fluid harvested 24 hours after injection of fecal bacteria (n = 7). Data are means ± SEM; comparisons between genotypes were performed using 2-way ANOVA with Dunnett′s (C) or Šídák’s (D, G, J, and L) multiple comparisons test, or unpaired, 2-sided t test (F, I, K, M, and N). n, number of independent experiments or mice; RLU, relative luminescence units; *P < 0.05; **P < 0.01; ***P < 0.001; ****P < 0.0001.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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