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Updated: Dec 8, 2025

A Modified Trier Social Stress Test for Vulnerable Mexican American Adolescents
Published on: July 10, 2017
Heart-brain interactions during social and cognitive stress in hypertensive disease: A multidimensional approach
Agustina Legaz1,2,3, Adrián Yoris1,4, Lucas Sedeño1
1National Scientific and Technical Research Council (CONICET), Buenos Aires, Argentina.
Insights
Hypertensive disease patients show autonomic imbalance with higher baseline stress and reduced responsiveness to acute stress. These findings reveal neurophysiological and neuroanatomical alterations linked to heart-brain interactions.
Area of Science:
- Cardiovascular research
- Neuroscience
- Psychophysiology
Background:
- Hypertensive disease (HTD) is a major risk factor for cardiovascular and cerebrovascular diseases.
- Stress significantly impacts HTD, involving complex cardiac and neural interactions.
- Understanding stress markers like heart rate variability (HRV) and neurocognitive measures in HTD is crucial but remains controversial and underexplored.
Purpose of the Study:
- To investigate cardiodynamic, electrophysiological, and neuroanatomical stress markers in hypertensive disease patients.
- To compare stress responses between HTD patients and healthy controls using a validated stress test.
- To explore the relationship between neurocognitive stress markers and brain structure in HTD.
Main Methods:
- Participants underwent the Trier Social Stress Test (TSST), including baseline and stress periods.
- Assessed heart rate variability (HRV) using the low frequency/high frequency (LF/HF) ratio.
- Measured online neurophysiological stress via heartbeat-evoked potential (HEP) and neuroanatomy via voxel-based morphometry (VBM).
Main Results:
- HTD patients exhibited an elevated LF/HF ratio and greater HEP modulations at baseline compared to controls.
- HTD patients showed reduced changes in HRV and HEP between baseline and stress periods.
- No significant stress-related HRV modulations were associated with grey matter volume in frontrostriatal regions in HTD patients.
Conclusions:
- HTD patients display signs of autonomic imbalance, including basal stress overload and blunted responses to acute psychosocial stress.
- Neurophysiological and neuroanatomical alterations are evident in HTD patients' stress response.
- Multimodal neurocognitive data are vital for advancing the characterization, prognosis, and treatment of HTD and related conditions.
Abstract:
Hypertensive disease (HTD), a prominent risk factor for cardiovascular and cerebrovascular diseases, is characterized by elevated stress-proneness. Since stress levels are underpinned by both cardiac and neural factors, multidimensional insights are required to robustly understand their disruption in HTD. Yet, despite their crucial relevance, heart rate variability (HRV) and multimodal neurocognitive markers of stress in HTD remain controversial and unexplored respectively. To bridge this gap, we studied cardiodynamic as well as electrophysiological and neuroanatomical measures of stress in HTD patients and healthy controls. Both groups performed the Trier Social Stress Test (TSST), a validated stress-inducing task comprising a baseline and a mental stress period. During both stages, we assessed a sensitive HRV parameter (the low frequency/high frequency [LF/HF ratio]) and an online neurophysiological measure (the heartbeat-evoked potential [HEP]). Also, we obtained neuroanatomical data via voxel-based morphometry (VBM) for correlation with online markers. Relative to controls, HTD patients exhibited increased LF/HF ratio and greater HEP modulations during baseline, reduced changes between baseline and stress periods, and lack of significant stress-related HRV modulations associated with the grey matter volume of putative frontrostriatal regions. Briefly, HTD patients presented signs of stress-related autonomic imbalance, reflected in a potential basal stress overload and a lack of responsiveness to acute psychosocial stress, accompanied by neurophysiological and neuroanatomical alterations. These multimodal insights underscore the relevance of neurocognitive data for developing innovations in the characterization, prognosis and treatment of HTD and other conditions with autonomic imbalance. More generally, these findings may offer new insights into heart-brain interactions.
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