The Missing Link in the Pathophysiology of Vascular Cognitive Impairment: Design of the Heart-Brain Study

Astrid M Hooghiemstra1, Anne Suzanne Bertens2,3, Anna E Leeuwis1

  • 1Alzheimer Center & Department of Neurology, Amsterdam Neuroscience, VU University Medical Center, Amsterdam, the Netherlands.

Insights

The Heart-Brain Study investigates how heart and brain blood flow (hemodynamics) impact cognitive function in patients with heart failure, carotid occlusive disease, and vascular cognitive impairment. Findings highlight hemodynamics as a key factor in cognitive decline.

Area of Science:

  • Cardiovascular Medicine
  • Neurology
  • Cognitive Science

Background:

  • Hemodynamic balance in the heart-brain axis is vital for brain integrity and cognitive function.
  • Patients with heart failure (HF), carotid occlusive disease (COD), and vascular cognitive impairment (VCI) often experience symptoms extending beyond their primary condition due to interconnected hemodynamic changes.
  • The Heart-Brain Study posits that hemodynamic status is an underappreciated cause of VCI.

Purpose of the Study:

  • To investigate the extent to which hemodynamic changes contribute to VCI.
  • To elucidate the underlying mechanisms linking hemodynamics to cognitive impairment.
  • To examine the role of hemodynamic status as a binding factor across the heart-brain axis in various patient groups.

Main Methods:

  • A multicenter cohort study involving 645 participants (VCI, COD, HF, and controls) with a 2-year follow-up.
  • Comprehensive data collection including clinical assessments, neuropsychological testing, cardiac, vascular, and brain MRI, and blood sampling.
  • Subgroup analyses included Alzheimer's biomarkers, echocardiography, and 24-hour blood pressure monitoring.

Main Results:

  • The study design focuses on assessing relationships between cardiovascular factors, heart-brain hemodynamic status, and cognitive impairment.
  • Utilizes centralized data storage and automated processing pipelines for clinical and imaging data.
  • Follow-up measurements ensure comprehensive longitudinal data on cognitive function and brain structure.

Conclusions:

  • The Heart-Brain Study aims to clarify the intricate relationships within the heart-brain axis.
  • By examining diverse patient groups, the study can reveal how hemodynamic status links cardiovascular and neurological disorders.
  • This research provides a unique opportunity to understand clinical and subclinical manifestations of heart, vascular, and brain conditions, with hemodynamics as a central factor.
Abstract

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