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Updated: Jun 25, 2026

Identification of Disease-related Spatial Covariance Patterns using Neuroimaging Data
Published on: June 26, 2013
Spatial correspondence among regional gene expressions and gray matter volume loss in multiple sclerosis
Paolo Preziosa1,2,3, Loredana Storelli1, Nicolò Tedone1
1Neuroimaging Research Unit, Division of Neuroscience, IRCCS San Raffaele Scientific Institute, Milan, Italy.
Abstract:
In multiple sclerosis (MS), a non-random and clinically relevant pattern of gray matter (GM) volume loss has been described. Whether differences in regional gene expression might underlay distinctive pathological processes contributing to this regional variability has not been explored yet. Two hundred eighty-six MS patients and 172 healthy controls (HC) underwent a brain 3T MRI, a complete neurological evaluation and a neuropsychological assessment. Using Allen Human Brain Atlas, voxel-based morphometry and MENGA platform, we integrated brain transcriptome and neuroimaging data to explore the spatial cross-correlations between regional GM volume loss and expressions of 2710 genes involved in MS (p < 0.05, family-wise error-corrected). Enrichment analyses were performed to evaluate overrepresented molecular functions, biological processes and cellular components involving genes significantly associated with voxel-based morphometry-derived GM maps (p < 0.05, Bonferroni-corrected). A diffuse GM volume loss was found in MS patients compared to HC and it was spatially correlated with 74 genes involved in GABA neurotransmission and mitochondrial oxidoreductase activity mainly expressed in neurons and astrocytes. A more severe GM volume loss was spatially associated, in more disabled MS patients, with 44 genes involved in mitochondrial integrity of all resident cells of the central nervous system (CNS) and, in cognitively impaired MS patients, with 64 genes involved in mitochondrial protein heterodimerization and oxidoreductase activities expressed also in microglia and endothelial cells. Specific differences in the expressions of genes involved in synaptic GABA receptor activities and mitochondrial functions in resident CNS cells may influence regional susceptibility to MS-related excitatory/inhibitory imbalance and oxidative stress, and subsequently, to GM volume loss.
Insights
Gene expression in gray matter links to gray matter volume loss in multiple sclerosis (MS). Specific genes related to GABA neurotransmission and mitochondrial function correlate with MS-related brain changes.
Area of Science:
- Neuroscience
- Genetics
- Medical Imaging
Background:
- Multiple sclerosis (MS) exhibits a non-random pattern of gray matter (GM) volume loss.
- The underlying genetic basis for regional variability in MS-related GM loss remains unexplored.
Purpose of the Study:
- To investigate the spatial correlation between regional GM volume loss and gene expression in the brain of MS patients.
- To identify specific genes and biological pathways associated with GM volume changes in MS.
Main Methods:
- Integrated neuroimaging (3T MRI, voxel-based morphometry) with brain transcriptome data (Allen Human Brain Atlas) from 286 MS patients and 172 healthy controls (HC).
- Explored spatial cross-correlations between GM volume and expression of 2710 MS-associated genes.
- Performed enrichment analyses for genes linked to GM volume loss.
Main Results:
- Diffuse GM volume loss was observed in MS patients compared to HC.
- GM volume loss spatially correlated with genes involved in GABA neurotransmission and mitochondrial oxidoreductase activity.
- In more disabled MS patients, GM loss associated with genes regulating mitochondrial integrity; in cognitively impaired patients, genes related to mitochondrial protein heterodimerization and oxidoreductase activity were implicated.
Conclusions:
- Regional gene expression differences, particularly those affecting GABAergic signaling and mitochondrial function, may contribute to the regional susceptibility of GM to MS.
- These molecular pathways could influence MS-related excitatory/inhibitory imbalance and oxidative stress, leading to GM volume loss.

