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Abuduaini, Y.

Publications and source records attributed to Abuduaini, Y..

2 recordsLinked to original sources

Global brain asymmetry and its variations in aging and related diseases

Functional lateralization is a cardinal feature of human brain, and deviations from typical lateralization are observed in various brain disorders. Although this phenomenon has been widely acknowledged in the field of human neuroscience, decades of research have shown that it is a challenge to bridge the gap between (a)typically lateralized functions and hemispheric differences in structure (termed structural asymmetry). To address this important question, the present study employed the state-of-the-art machine learning techniques to investigate the brain structural asymmetry and its associations with cognitive functions, aging, and aging-related diseases, by integrating large-scale datasets. Our proposed multivariate approach revealed previously unknown and substantial structural differences between the left and right hemispheres, and established the associations between the global brain asymmetry and lateralized functions including hand motor and emotion processing. Furthermore, at the population level we mapped the aging trajectories of the global brain asymmetry, and unveiled significant diagnosis-specific variations in patients with Alzheimers disease and Parkinsons disease, and individuals carrying a relevant genetic risk for atypical brain aging (i.e., APOE4 carriers). These results demonstrated left-hemisphere-linked changes in aging, which has challenged the traditional "right hemi-aging" model, and offered a promising approach for assessing brain aging and related diseases. Overall, our study with a novel approach presents one of the largest-scale investigation of global brain asymmetry, and takes an important step forward in understanding the intricate interplay between structural asymmetry, lateralized functions, and brain aging in health and disease. Significance statementFunctional lateralization is fundamental to the human brain, with deviations linked to various brain disorders. Bridging the gap between functional lateralization and structural asymmetry has been a long-standing challenge. Using advanced machine learning and large-scale datasets, this study introduced a multivariate global brain asymmetry approach and revealed previously unidentified structural differences between the brain hemispheres, correlating these with cognitive functions, aging, and diseases like Alzheimers and Parkinsons. Contrary to the traditional "right hemi-aging" model, we found left-hemisphere-linked aging changes. This work provides new insights into brain asymmetry, lateralized functions, and aging, offering a promising approach for assessing brain health and disease. Classifications: Biological Sciences (Psychological and Cognitive Sciences);

neuroscience↗

Deciphering structural asymmetry of the habenula in the human brain

Functional laterality of the habenula has been suggested in both animal models and the humans. Understanding this evolutionarily conserved brain feature is of fundamental importance and has been attracting attention due to its potential role in human cognition and a variety of neuropsychiatric disorders such as depression and schizophrenia. Deciphering structural asymmetry of the human habenula remains to be challenging. Here, we present a large-scale meta-analysis of the left-right differences in the habenular volume in the human brain with 52 datasets (N = 1,427), and also assessed the potential moderating effects of the sampling variability and other methodological factors. Results showed significant heterogeneity in the left-right differences across the datasets, which seems to be mainly due to different MRI scanners and segmentation approaches used. While little evidence was found for the volume asymmetry across all the datasets, the most pronounced and significant leftward asymmetry was found in the datasets from 3 T scanners and when using manual segmentation approaches. We did not find significant disorder-related differences relative to healthy controls in either the left-right asymmetry or the unilateral volume. This study not only provides useful data for future studies of brain imaging and methodological developments related to precision habenula measurements, but also helps to understand potential roles of habenular laterality in health and disorders.

neuroscience↗