Noninvasive Plaque Imaging to Accelerate Coronary Artery Disease Drug Development

Gemma A Figtree1,2,3,4, Philip D Adamson5,6, Charalambos Antoniades7,8

  • 1Kolling Institute of Medical Research, Sydney, Australia (G.A.F., S.T.V.).

Circulation
|November 28, 2022
PubMed

Insights

Coronary artery disease (CAD) imaging identifies distinct plaque phenotypes, offering new avenues for faster cardiovascular drug development. These imaging end points could serve as surrogate endpoints, streamlining clinical trials for novel therapies.

Area of Science:

  • Cardiovascular Medicine
  • Medical Imaging
  • Pharmacology

Background:

  • Coronary artery disease (CAD) is a leading global cause of death, necessitating novel therapeutic strategies beyond traditional risk factor modification.
  • Advancements in coronary imaging reveal distinct, prognostically significant atherosclerotic plaque phenotypes, ranging from high-risk to low-risk.
  • Current cardiovascular drug development faces challenges due to high costs and lengthy clinical trial timelines.

Purpose of the Study:

  • To review current noninvasive coronary imaging technologies and their application in clinical trials for cardiovascular drug development.
  • To explore the potential of using distinct plaque phenotypes as surrogate endpoints to accelerate the evaluation of novel CAD therapies.
  • To discuss the implications of imaging endpoints for trial design, sample size, and regulatory considerations.

Main Methods:

  • Comprehensive review of noninvasive coronary imaging modalities (CT, PET, MRI) and their role in characterizing plaque phenotypes.
  • Analysis of how imaging endpoints can enrich trial populations with high-risk patients or serve as primary efficacy measures.
  • Examination of existing surrogate endpoints approved by regulatory bodies and the rationale for considering imaging in CAD.

Main Results:

  • Noninvasive imaging allows for quantitative assessment of diverse coronary plaque phenotypes, reflecting different pathophysiological processes and event risks.
  • Imaging endpoints have the potential to significantly reduce trial costs and timelines by enabling earlier assessment of drug efficacy.
  • Robust data support the correlation between plaque stabilization observed via imaging and established clinical outcomes.

Conclusions:

  • Distinct coronary plaque phenotypes identified by advanced imaging offer a promising avenue for accelerating cardiovascular drug development.
  • Establishing consensus on imaging endpoints and protocols, in partnership with regulatory agencies, is crucial for their adoption as surrogate endpoints for CAD.
  • The timely consideration of imaging endpoints could lead to a more efficient and sustainable pathway for novel cardiovascular therapies.

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