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Mathematical modeling of the cortisol stress response to develop indicators that are applicable across studies

  • Laura de Nooij*
  • , Jonathan F. Posthuma
  • , Robert Miller
  • , Milou S. C. Sep
  • , Conny Quaedflieg
  • , Dennis Hernaus
  • , Christiaan H. Vinkers
  • , Erno J. Hermans
  • , STRESS-EU consortium
  • *Corresponding author for this work

Research output: Contribution to journalArticleAcademicpeer-review

Abstract

Growing interest in interindividual differences in stress neuroendocrinology has created a need to combine data from multiple laboratory acute stress induction studies to allow large-scale individual participant data (IPD) meta-analyses. However, established cortisol stress response indicators such as area under the curve (AUC) are inherently affected by sampling timing and duration, although to what extent remains unknown. Here, we leveraged a large, combined dataset (STRESS-EU; n =1295) to develop novel model-based indicators that can accommodate variability in sampling schedules. These were based on modeled individual response curves that achieve full data inter- and extrapolation. We validated this method with simulated and independent data. Crucially, combined data simulations particularly showed higher accuracy for model-based versus conventional 'observation-based' AUC indicators with variability in sampling duration. In conclusion, our novel method harmonizes cortisol response indicator estimates for combined data, yielding opportunities for IPD meta-analyses of acute stress test studies that could greatly advance the field.
Original languageEnglish
Article number100790
Number of pages13
JournalNeurobiology of Stress
Volume42
DOIs
Publication statusPublished - Jun 2026

Keywords

  • Salivary cortisol
  • Cortisol response
  • Area under the curve
  • Acute stress test
  • Stress induction
  • Statistical modeling
  • UNDER-THE-CURVE
  • SOCIAL STRESS
  • HPA AXIS
  • HEALTHY-MEN
  • REACTIVITY
  • RECOVERY
  • DEPRESSION

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