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TRPA1 antagonist LY3526318 inhibits the cinnamaldehyde-evoked dermal blood flow increase: translational proof of pharmacology.

Dorien BampsAnthony James BlockeelErwin DreesenHeleen MarynissenJolien LaenenAnne Van HeckenAugust WilkeShahram ShahabiKirk W JohnsonEmily Catherine CollinsLisa M BroadKeith G PhillipsJan de Hoon
Published in: Clinical pharmacology and therapeutics (2023)
Transient receptor potential Ankyrin 1 (TRPA1) is an ion channel expressed by sensory neurons, where it mediates pain signalling. Consequently, it has emerged as a promising target for novel analgesics, yet to date no TRPA1 antagonists have been approved for clinical use. In the present translational study, we utilized dermal blood flow changes evoked by TRPA1 agonist cinnamaldehyde as a target engagement biomarker to investigate the in vivo pharmacology of LY3526318, a novel TRPA1 antagonist. In rats, LY3526318 (1, 3 and 10 mg/kg, p.o.) dose-dependently reduced the cutaneous vasodilation typically observed following topical application of 10% v/v cinnamaldehyde. The inhibition was significant at the site of cinnamaldehyde application and also when including an adjacent area of skin. Similarly, in a cohort of 16 healthy human volunteers, LY3526318 administration (10, 30 and 100 mg, p.o.) dose-dependently reduced the elevated blood flow surrounding the site of 10% v/v cinnamaldehyde application, with a trend towards inhibition at the site of application. Comparisons between both species reveal that the effects of LY3526318 on the cinnamaldehyde-induced dermal blood flow are greater in rats relative to humans, even when adjusting for cross-species differences in potency of the compound at TRPA1. Exposure-response relationships suggest that a greater magnitude response may be observed in humans if higher antagonist concentrations could be achieved. Taken together, these results demonstrate that cinnamaldehyde-evoked changes in dermal blood flow can be utilized as a target engagement biomarker for TRPA1 activity and that LY3526318 antagonizes the ion channel both in rats and humans.
Keyphrases
  • blood flow
  • wound healing
  • social media
  • endothelial cells
  • chronic pain
  • spinal cord
  • pain management
  • dna methylation
  • gene expression
  • risk assessment
  • spinal cord injury
  • drug induced
  • subarachnoid hemorrhage