Authors
Ronchi, D., Roversi, C., Zannoni, S., De Carlo, A., Visentin, R., Tagliavini, A., Pergher, M., Pellacani, A., Morbioli, L., Franchi, J., Methner, C., Parazzoli, a., Kaul, S.
Abstract
In pre-clinal studies, VC108, a novel GPR39 inhibitor, increased myocardial O2 tension (mpO2) during different phases of acute myocardial infarction (AMI). The purpose of this work was to investigate the temporal effects of VC108 on mpO2 using a novel population PK/PD model developed from preclinical data using healthy animals and animals subjected to AMI protocols. PK/PD simulations were then performed to explore mpO2 dynamic in untested experimental scenarios. VC108 PK data fitted well to a two-compartment model with linear elimination with body weight, sex, and nominal dose identified as significant covariates influencing clearance and/or central compartment volume. Applying indirect effect model principles for representing mpO2 flux, a structural population PK/PD model was developed to capture mpO2 dynamics during different AMI phases: before and during coronary occlusion and after reperfusion. The model successfully captured basal mpO2 homeostasis, ischemic decline, and reperfusion overshoot, while quantifying the contribution of VC108 to collateral blood flow and functional recovery. Dose response relationships were simulated to measure the effect of different VC108 dose levels on permanent damage, i.e. a reduction in mpO2 at steady state after AMI. The probability of remaining below predefined damage thresholds (mpO2 reduction of 5% to 20%) increased with dose in both sexes, with females consistently achieving greater protection that plateaued around 1 mg/kg of VC108 for higher permanent damage. This model represents a valuable tool to describe, for the first time, VC108 efficacy data and pharmacokinetics with ischemia/reperfusion dynamics and quantify its effect in untested dose levels.
Preprint server:
bioRxiv
The authors list and abstract were imported from bioRxiv on 30 Sep 2026.
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