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Dalcetrapib

How ADCY9 and CETP might interact inside arterial macrophages to explain the genotype-dependent effect of dalcetrapib, with dal-GenE poised to test it (Circ Genom Precis Med 2021)

Original title: Role of Adenylate Cyclase 9 in the Pharmacogenomic Response to Dalcetrapib: Clinical Paradigm and Molecular Mechanisms in Precision Cardiovascular Medicine

Circ Genom Precis Med · · 7

Rhainds D, Packard CJ, Brodeur MR, Niesor EJ, Sacks FM, Jukema JW, Wright RS, Waters DD, Heinonen T, Black DM, Laghrissi-Thode F, Dubé MP et al.

After dal-OUTCOMES showed a neutral overall result, a genome-wide study found the ADCY9 variant rs1967309 associated with cardiovascular event risk only in patients taking dalcetrapib, a CETP modulator: AA homozygotes were protected on dalcetrapib while GG homozygotes had increased risk. This review summarises the evidence on the clinical and biomarker effects of rs1967309 in dalcetrapib trials, and mouse data on ADCY9 gene inactivation and cardiovascular physiology. The authors propose a mechanistic model centred on the arterial wall macrophage: dalcetrapib inhibits CETP-mediated cholesteryl ester transfer from endoplasmic reticulum membranes to lipid droplets, progressively reducing cholesteryl ester synthesis and raising free cholesterol in the endoplasmic reticulum. Reduced ADCY9 activity, by paradoxically raising cyclic AMP and cellular cholesterol efflux, could then confer cardiovascular protection specifically in rs1967309 AA carriers. The ongoing dal-GenE trial, recruiting 6,145 patients with the protective AA genotype, was designed to give a definitive answer to whether dalcetrapib benefits this population.

Read the paper (DOI)PubMed

Original abstract

Following the neutral results of the dal-OUTCOMES trial, a genome-wide study identified the rs1967309 variant in the adenylate cyclase type 9 (ADCY9) gene on chromosome 16 as being associated with the risk of future cardiovascular events only in subjects taking dalcetrapib, a CETP (cholesterol ester transfer protein) modulator. Homozygotes for the minor A allele (AA) were protected from recurrent cardiovascular events when treated with dalcetrapib, while homozygotes for the major G allele (GG) had increased risk. Here, we present the current state of knowledge regarding the impact of rs1967309 in ADCY9 on clinical observations and biomarkers in dalcetrapib trials and the effects of mouse ADCY9 gene inactivation on cardiovascular physiology. Finally, we present our current model of the interaction between dalcetrapib and ADCY9 gene variants in the arterial wall macrophage, based on the intracellular role of CETP in the transfer of complex lipids from endoplasmic reticulum membranes to lipid droplets. Briefly, the concept is that dalcetrapib would inhibit CETP-mediated transfer of cholesteryl esters, resulting in a progressive inhibition of cholesteryl ester synthesis and free cholesterol accumulation in the endoplasmic reticulum. Reduced ADCY9 activity, by paradoxically leading to higher cyclic AMP levels and in turn increased cellular cholesterol efflux, could impart cardiovascular protection in rs1967309 AA patients. The ongoing dal-GenE trial recruited 6145 patients with the protective AA genotype and will provide a definitive answer to whether dalcetrapib will be protective in this population.

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Summary written by cetpinhibition.org from the published abstract; figures as published. Page updated 18 August 2026. Methods.