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Causal relationships between cerebral cortical structure and preeclampsia: insights from bidirectional Mendelian
Qiong Liu1, Shaoqing Jiang2, Yan Li2
1Department of Clinical Nutrition, Huadu District People's Hospital of Guangzhou, 48 Xinhua Road, Huadu District, Guangzhou, Guangdong 510800, China.
Insights
Preeclampsia, a pregnancy complication, shows bidirectional links with brain structure changes. Specific cortical thickness and surface area alterations are associated with preeclampsia risk, suggesting neurobiological connections.
Area of Science:
- Neuroscience
- Obstetrics
- Genetics
Background:
- Preeclampsia is a pregnancy condition with high blood pressure, posing risks to mother and fetus.
- Neurological effects of preeclampsia are suspected but not fully understood.
- Causal links between brain structure and preeclampsia require clarification.
Purpose of the Study:
- To investigate the causal relationship between brain cortical structure and preeclampsia.
- To explore bidirectional influences using genetic data.
Main Methods:
- Genome-wide association study data for cortical thickness (TH) and surface area (SA).
- Bidirectional Mendelian randomization (MR) analyses.
- Co-localization analyses to assess shared genetic architecture.
Main Results:
- Increased cortical TH (inferior parietal, supramarginal) and SA (postcentral) linked to higher preeclampsia risk.
- Preeclampsia associated with altered SA in supramarginal, middle temporal, and lingual gyri.
- Co-localization indicated distinct genetic factors for brain structure and preeclampsia.
Conclusions:
- Bidirectional influences exist between cortical structure and preeclampsia.
- Neuroinflammatory and vascular pathways may mediate these effects.
- Brain structure assessment could aid preeclampsia risk evaluation; neuroprotection strategies warrant further study.
Abstract:
Preeclampsia, a multifaceted condition characterized by high blood pressure during pregnancy, is linked to substantial health risks for both the mother and the fetus. Previous studies suggest potential neurological impacts, but the causal relationships between cortical structural changes and preeclampsia remain unclear. We utilized genome-wide association study data for cortical thickness (TH) and surface area (SA) across multiple brain regions and preeclampsia. Bidirectional Mendelian randomization (MR) analyses were conducted to assess causality, followed by co-localization analyses to confirm shared genetic architecture. Increased cortical TH in the inferior parietal and supramarginal regions, and an enlarged SA in the postcentral region, were significantly associated with higher preeclampsia risk. Conversely, preeclampsia was linked to increased SA in the supramarginal and middle temporal gyri, and decreased SA in the lingual gyrus. Co-localization analyses indicated distinct genetic determinants for cortical structures and preeclampsia. Our findings reveal bidirectional influences between cortical structural features and preeclampsia, suggesting neuroinflammatory and vascular mechanisms as potential pathways. These insights underscore the importance of considering brain structure in preeclampsia risk assessment and highlight the need for further research into neuroprotective strategies.
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