Literature DB >> 33373359

Associations between arterial stiffening and brain structure, perfusion, and cognition in the Whitehall II Imaging Sub-study: A retrospective cohort study.

Sana Suri1,2, Scott T Chiesa3, Enikő Zsoldos1,2, Clare E Mackay1,2, Nicola Filippini1,2, Ludovica Griffanti1,2, Abda Mahmood1, Archana Singh-Manoux4,5, Martin J Shipley4, Eric J Brunner4, Mika Kivimäki4, John E Deanfield3, Klaus P Ebmeier1.   

Abstract

BACKGROUND: Aortic stiffness is closely linked with cardiovascular diseases (CVDs), but recent studies suggest that it is also a risk factor for cognitive decline and dementia. However, the brain changes underlying this risk are unclear. We examined whether aortic stiffening during a 4-year follow-up in mid-to-late life was associated with brain structure and cognition in the Whitehall II Imaging Sub-study. METHODS AND
FINDINGS: The Whitehall II Imaging cohort is a randomly selected subset of the ongoing Whitehall II Study, for which participants have received clinical follow-ups for 30 years, across 12 phases. Aortic pulse wave velocity (PWV) was measured in 2007-2009 (Phase 9) and at a 4-year follow-up in 2012-2013 (Phase 11). Between 2012 and 2016 (Imaging Phase), participants received a multimodal 3T brain magnetic resonance imaging (MRI) scan and cognitive tests. Participants were selected if they had no clinical diagnosis of dementia and no gross brain structural abnormalities. Voxel-based analyses were used to assess grey matter (GM) volume, white matter (WM) microstructure (fractional anisotropy (FA) and diffusivity), white matter lesions (WMLs), and cerebral blood flow (CBF). Cognitive outcomes were performance on verbal memory, semantic fluency, working memory, and executive function tests. Of 542 participants, 444 (81.9%) were men. The mean (SD) age was 63.9 (5.2) years at the baseline Phase 9 examination, 68.0 (5.2) at Phase 11, and 69.8 (5.2) at the Imaging Phase. Voxel-based analysis revealed that faster rates of aortic stiffening in mid-to-late life were associated with poor WM microstructure, viz. lower FA, higher mean, and radial diffusivity (RD) in 23.9%, 11.8%, and 22.2% of WM tracts, respectively, including the corpus callosum, corona radiata, superior longitudinal fasciculus, and corticospinal tracts. Similar voxel-wise associations were also observed with follow-up aortic stiffness. Moreover, lower mean global FA was associated with faster rates of aortic stiffening (B = -5.65, 95% CI -9.75, -1.54, Bonferroni-corrected p < 0.0125) and higher follow-up aortic stiffness (B = -1.12, 95% CI -1.95, -0.29, Bonferroni-corrected p < 0.0125). In a subset of 112 participants who received arterial spin labelling scans, faster aortic stiffening was also related to lower cerebral perfusion in 18.4% of GM, with associations surviving Bonferroni corrections in the frontal (B = -10.85, 95% CI -17.91, -3.79, p < 0.0125) and parietal lobes (B = -12.75, 95% CI -21.58, -3.91, p < 0.0125). No associations with GM volume or WMLs were observed. Further, higher baseline aortic stiffness was associated with poor semantic fluency (B = -0.47, 95% CI -0.76 to -0.18, Bonferroni-corrected p < 0.007) and verbal learning outcomes (B = -0.36, 95% CI -0.60 to -0.12, Bonferroni-corrected p < 0.007). As with all observational studies, it was not possible to infer causal associations. The generalisability of the findings may be limited by the gender imbalance, high educational attainment, survival bias, and lack of ethnic and socioeconomic diversity in this cohort.
CONCLUSIONS: Our findings indicate that faster rates of aortic stiffening in mid-to-late life were associated with poor brain WM microstructural integrity and reduced cerebral perfusion, likely due to increased transmission of pulsatile energy to the delicate cerebral microvasculature. Strategies to prevent arterial stiffening prior to this point may be required to offer cognitive benefit in older age. TRIAL REGISTRATION: ClinicalTrials.gov NCT03335696.

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Year:  2020        PMID: 33373359      PMCID: PMC7771705          DOI: 10.1371/journal.pmed.1003467

Source DB:  PubMed          Journal:  PLoS Med        ISSN: 1549-1277            Impact factor:   11.069


  40 in total

1.  Arterial stiffness, pressure and flow pulsatility and brain structure and function: the Age, Gene/Environment Susceptibility--Reykjavik study.

Authors:  Gary F Mitchell; Mark A van Buchem; Sigurdur Sigurdsson; John D Gotal; Maria K Jonsdottir; Ólafur Kjartansson; Melissa Garcia; Thor Aspelund; Tamara B Harris; Vilmundur Gudnason; Lenore J Launer
Journal:  Brain       Date:  2011-11       Impact factor: 13.501

2.  Arterial pulse wave velocity as a marker of poor cognitive function in an elderly community-dwelling population.

Authors:  Yoshinori Fujiwara; Paulo H M Chaves; Ryutaro Takahashi; Hidenori Amano; Hiroto Yoshida; Shu Kumagai; Koji Fujita; Dou Gui Wang; Shoji Shinkai
Journal:  J Gerontol A Biol Sci Med Sci       Date:  2005-05       Impact factor: 6.053

Review 3.  Arterial stiffness and brain integrity: A review of MRI findings.

Authors:  Atef Badji; Dalia Sabra; Louis Bherer; Julien Cohen-Adad; Hélène Girouard; Claudine J Gauthier
Journal:  Ageing Res Rev       Date:  2019-05-04       Impact factor: 10.895

4.  Classification and characterization of periventricular and deep white matter hyperintensities on MRI: A study in older adults.

Authors:  Ludovica Griffanti; Mark Jenkinson; Sana Suri; Enikő Zsoldos; Abda Mahmood; Nicola Filippini; Claire E Sexton; Anya Topiwala; Charlotte Allan; Mika Kivimäki; Archana Singh-Manoux; Klaus P Ebmeier; Clare E Mackay; Giovanna Zamboni
Journal:  Neuroimage       Date:  2017-03-15       Impact factor: 6.556

5.  Association of Central Arterial Stiffness and Pressure Pulsatility with Mild Cognitive Impairment and Dementia: The Atherosclerosis Risk in Communities Study-Neurocognitive Study (ARIC-NCS).

Authors:  Michelle L Meyer; Priya Palta; Hirofumi Tanaka; Jennifer A Deal; Jacqueline Wright; David S Knopman; Michael E Griswold; Thomas H Mosley; Gerardo Heiss
Journal:  J Alzheimers Dis       Date:  2017       Impact factor: 4.472

6.  Association of arterial stiffness with progression of subclinical brain and cognitive disease.

Authors:  Connie W Tsao; Jayandra J Himali; Alexa S Beiser; Martin G Larson; Charles DeCarli; Ramachandran S Vasan; Gary F Mitchell; Sudha Seshadri
Journal:  Neurology       Date:  2016-01-20       Impact factor: 9.910

Review 7.  Arterial stiffness, cognitive impairment and dementia: confounding factor or real risk?

Authors:  M Florencia Iulita; Adrián Noriega de la Colina; Hélène Girouard
Journal:  J Neurochem       Date:  2017-11-27       Impact factor: 5.372

8.  Early role of vascular dysregulation on late-onset Alzheimer's disease based on multifactorial data-driven analysis.

Authors:  Y Iturria-Medina; R C Sotero; P J Toussaint; J M Mateos-Pérez; A C Evans
Journal:  Nat Commun       Date:  2016-06-21       Impact factor: 14.919

9.  Association of aortic stiffness with cognitive decline: Whitehall II longitudinal cohort study.

Authors:  Marzieh Araghi; Martin J Shipley; Ian B Wilkinson; Carmel M McEniery; Carlos A Valencia-Hernández; Mika Kivimaki; Séverine Sabia; Archana Singh-Manoux; Eric J Brunner
Journal:  Eur J Epidemiol       Date:  2019-11-27       Impact factor: 8.082

Review 10.  Dementia prevention, intervention, and care: 2020 report of the Lancet Commission.

Authors:  Gill Livingston; Jonathan Huntley; Andrew Sommerlad; David Ames; Clive Ballard; Sube Banerjee; Carol Brayne; Alistair Burns; Jiska Cohen-Mansfield; Claudia Cooper; Sergi G Costafreda; Amit Dias; Nick Fox; Laura N Gitlin; Robert Howard; Helen C Kales; Mika Kivimäki; Eric B Larson; Adesola Ogunniyi; Vasiliki Orgeta; Karen Ritchie; Kenneth Rockwood; Elizabeth L Sampson; Quincy Samus; Lon S Schneider; Geir Selbæk; Linda Teri; Naaheed Mukadam
Journal:  Lancet       Date:  2020-07-30       Impact factor: 79.321

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  6 in total

1.  Vascular and microstructural markers of cognitive pathology.

Authors:  Claudia Coffin; Cynthia K Suerken; James R Bateman; Christopher T Whitlow; Benjamin J Williams; Mark A Espeland; Bonnie C Sachs; Maryjo Cleveland; Mia Yang; Samantha Rogers; Kathleen M Hayden; Laura D Baker; Jeff Williamson; Suzanne Craft; Timothy M Hughes; Samuel N Lockhart
Journal:  Alzheimers Dement (Amst)       Date:  2022-07-06

2.  Association of cerebral small vessel disease burden with brain structure and cognitive and vascular risk trajectories in mid-to-late life.

Authors:  Michelle G Jansen; Ludovica Griffanti; Clare E Mackay; Melis Anatürk; Luca Melazzini; Ann-Marie G de Lange; Nicola Filippini; Enikő Zsoldos; Kim Wiegertjes; Frank-Erik de Leeuw; Archana Singh-Manoux; Mika Kivimäki; Klaus P Ebmeier; Sana Suri
Journal:  J Cereb Blood Flow Metab       Date:  2021-10-05       Impact factor: 6.960

3.  Study Protocol: The Heart and Brain Study.

Authors:  Sana Suri; Daniel Bulte; Scott T Chiesa; Klaus P Ebmeier; Peter Jezzard; Sebastian W Rieger; Jemma E Pitt; Ludovica Griffanti; Thomas W Okell; Martin Craig; Michael A Chappell; Nicholas P Blockley; Mika Kivimäki; Archana Singh-Manoux; Ashraf W Khir; Alun D Hughes; John E Deanfield; Daria E A Jensen; Sebastian F Green; Veronika Sigutova; Michelle G Jansen; Enikő Zsoldos; Clare E Mackay
Journal:  Front Physiol       Date:  2021-03-31       Impact factor: 4.566

Review 4.  Inflammation, Nitro-Oxidative Stress, Impaired Autophagy, and Insulin Resistance as a Mechanistic Convergence Between Arterial Stiffness and Alzheimer's Disease.

Authors:  Jhana O Hendrickx; Wim Martinet; Debby Van Dam; Guido R Y De Meyer
Journal:  Front Mol Biosci       Date:  2021-03-29

5.  Short-Term Pharmacological Induction of Arterial Stiffness and Hypertension with Angiotensin II Does Not Affect Learning and Memory and Cerebral Amyloid Load in Two Murine Models of Alzheimer's Disease.

Authors:  Jhana O Hendrickx; Elke Calus; Peter Paul De Deyn; Debby Van Dam; Guido R Y De Meyer
Journal:  Int J Mol Sci       Date:  2022-03-01       Impact factor: 5.923

Review 6.  Normal Aging Induces Changes in the Brain and Neurodegeneration Progress: Review of the Structural, Biochemical, Metabolic, Cellular, and Molecular Changes.

Authors:  Jiseon Lee; Hee-Jin Kim
Journal:  Front Aging Neurosci       Date:  2022-06-30       Impact factor: 5.702

  6 in total

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