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Author Spotlight: Assessing Ischemic Stroke Damage Through Middle Cerebral Artery Occlusion Model
Published on: August 11, 2023
Cardiovascular risk factors modulate the effect of brain imaging-derived phenotypes on ischaemic stroke risk
Yuan-Yuan Liang1, Meng-Jie Li1,2, Dong-Rui Ma1
1Department of Neurology, The First Affiliated Hospital of Zhengzhou University, Zhengzhou University, Zhengzhou, Henan 450000, China.
Insights
Cardiovascular risk factors, particularly blood pressure, influence brain structure and increase ischaemic stroke risk. Understanding these links aids early detection and stroke prevention strategies.
Area of Science:
- Neuroscience
- Genetics
- Cardiology
Background:
- Cardiovascular risk factors are linked to stroke, especially ischaemic stroke, by altering brain structure and function.
- The specific role of these altered brain phenotypes in ischaemic stroke development remains understudied.
Purpose of the Study:
- To investigate the causal relationships between cardiovascular risk factors, brain imaging-derived phenotypes, and ischaemic stroke.
- To explore the mediating role of brain structure in blood pressure-related ischaemic stroke.
Main Methods:
- Utilized univariate and multivariable Mendelian randomization to assess causal effects.
- Examined 12 common cardiovascular risk factors against 3935 brain imaging-derived phenotypes and ischaemic stroke.
- Employed rigorous statistical tests for result reliability, including Steiger, heterogeneity, and pleiotropy tests.
Main Results:
- Eight cardiovascular risk factors were associated with 538 brain phenotypes, and nine with ischaemic stroke.
- Blood pressure (systolic and diastolic) emerged as a key factor, influencing ischaemic stroke through six brain phenotypes.
- Confirmed a causal link between blood pressure, specific brain phenotypes, and ischaemic stroke risk.
Conclusions:
- Cardiovascular risk factors, especially blood pressure, significantly impact brain structure and increase ischaemic stroke risk.
- Findings support enhanced early risk detection and stroke prevention strategies.
- Highlights the potential involvement of non-vascular factors in stroke etiology.
Abstract:
Studies have shown that cardiovascular risk factors are closely related to the occurrence of stroke, especially ischaemic stroke, as they can lead to changes in brain structure and function. However, the role of cardiovascular risk factors-induced changes in brain structure and function in the development of ischaemic stroke has not been studied. The aim of this study is thus to explore the causal association among cardiovascular risk factors, brain phenotypes and ischaemic stroke by assessing Mendelian randomization. We used univariate Mendelian randomization to sequentially investigate the causal effects of the 12 most common cardiovascular risk factors on brain structure and 3935 brain imaging-derived phenotypes in the development of ischaemic stroke. We also examined the mediating effect of brain structure on blood pressure-induced ischaemic stroke using a multivariable Mendelian randomization test. We tested the reliability of our results using the Steiger test, heterogeneity test, horizontal pleiotropy test and leave-one-out method. We found that 8 of the 12 examined cardiovascular risk factors were associated with 538 brain imaging-derived phenotypes, and 9 of the 12 cardiovascular risk factors were associated with IS. The main cardiovascular risk factors associated with brain imaging-derived phenotypes and ischaemic stroke was blood pressure (systolic and diastolic), which can affect the occurrence of ischaemic stroke through 6 types of brain imaging-derived phenotypes. However, extrapolation of our findings to other ethnic groups is challenging, and the possibility of reverse causality cannot be completely ruled out. This study identifies the role of cardiovascular risk factors, especially blood pressure, in affecting brain structure and ischaemic stroke risk. The findings assist in early risk detection and enhance stroke prevention strategies, also hinting at non-vascular factors' involvement.
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