Sara Seoane

ORCID: 0000-0002-8321-018X
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About
Contact & Profiles
Research Areas
  • Functional Brain Connectivity Studies
  • Neural dynamics and brain function
  • Transcranial Magnetic Stimulation Studies
  • Alzheimer's disease research and treatments
  • Mental Health Research Topics
  • Advanced Neuroimaging Techniques and Applications
  • Dementia and Cognitive Impairment Research
  • Deception detection and forensic psychology
  • Neural Networks and Applications
  • Gene Regulatory Network Analysis
  • Sleep and Wakefulness Research
  • Stress Responses and Cortisol
  • Memory and Neural Mechanisms
  • Advanced MRI Techniques and Applications
  • Photoreceptor and optogenetics research

Universidad de La Laguna
2021-2024

Amsterdam Neuroscience
2023-2024

Vrije Universiteit Amsterdam
2023-2024

Abstract Many neuroimaging studies have shown that the hippocampus participates in a resting‐state network called default mode network. However, how connects to network, whether other networks and different hippocampal subfields take part remains poorly understood. Here, we examined these issues using high spatial‐resolution 7T fMRI dataset from Human Connectome Project. We used data‐driven techniques relied on spatially‐restricted Independent Component Analysis, Dual Regression linear...

10.1111/ejn.15213 article EN cc-by European Journal of Neuroscience 2021-03-31

The medial temporal lobe (MTL) is a set of interconnected brain regions that have been shown to play central role in behavior as well neurological disease. Recent studies using resting-state functional magnetic resonance imaging (rsfMRI) attempted understand the MTL terms its connectivity with rest brain. However, exact characterization whole-brain networks co-activate how various sub-regions are associated these remains poorly understood. Here, we advance issues by exploiting high spatial...

10.1007/s00429-021-02442-1 article EN cc-by Brain Structure and Function 2022-01-18

Previous research on Physical Activity (PA) has been highly valuable in elucidating how PA affects the structure and function of hippocampus elderly populations that take part structured interventions. However, younger perform during daily-life activities remains poorly understood. In addition, this not examined impact internal hippocampus. Here, we performed a cross-sectional exploration way structural functional aspects are associated with habitual work, leisure time, sports daily lives...

10.3389/fnhum.2022.790359 article EN cc-by Frontiers in Human Neuroscience 2022-03-14

The amygdala is a brain region with complex internal structure that associated psychiatric disease. Methodological limitations have complicated the study of in humans. In current we examined functional connectivity between nine amygdaloid nuclei and existing resting-state networks using high spatial-resolution fMRI dataset. Using data-driven analysis techniques found there were three main clusters inside correlated somatomotor, ventral attention default mode networks. addition, each depended...

10.1371/journal.pone.0278962 article EN cc-by PLoS ONE 2022-12-28

Abstract Research on the impact of physical activity (PA) has shown that PA produces changes in structure and function a brain called hippocampus. There are three main limitations this research. First, majority work been carried out elderly populations as such, there is paucity research brains healthy young individuals. Second, whereas typically assessed through controlled interventions, due to performed during daily-life activities not explored. Finally, hippocampus complex internal...

10.21203/rs.3.rs-558921/v1 preprint EN cc-by Research Square (Research Square) 2021-06-03

Abstract The medial temporal lobe (MTL) is a set of interconnected brain regions that have been shown to play central role in behavior as well neurological disease. Recent studies using resting-state functional Magnetic Resonance Imaging (rsfMRI) attempted understand the MTL terms its connectivity with rest brain. However, exact characterization whole-brain networks co-activate how various sub-regions are associated these remains poorly understood. Here we advance issues by exploiting high...

10.21203/rs.3.rs-681614/v1 preprint EN cc-by Research Square (Research Square) 2021-07-08
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