Wspólna sieć funkcjonalna zaburzeń aktywności mózgu w padaczce płata skroniowego i jej molekularne mechanizmy

PubMed➕ 25.08.2026Front Mol Neurosci

Convergent functional networks of intrinsic activity alterations in temporal lobe epilepsy and their molecular correlates

W skrócie

Badacze przeanalizowali wyniki z 20 wcześniejszych badań mózgu i wykazali, że różne zaburzenia aktywności mózgu w padaczce płata skroniowego dotyczą wspólnej sieci mózgowej, głównie obszarów odpowiedzialnych za myślenie o sobie i wspomnienia. Sieć ta wiąże się ze specjalnymi genami i receptorami neuroprzekaźników, szczególnie serotoninowymi, co sugeruje, że padaczka płata skroniowego to nie losowe zaburzenia w różnych miejscach, ale zaburzona praca całej sieci mózgowej z konkretnymi przyczynami biologicznymi.

Oryginalny abstract (angielski)

BACKGROUND: Temporal lobe epilepsy (TLE) is increasingly recognized as a network disorder, yet reported regional intrinsic neural activity alterations from resting-state fMRI studies remain spatially heterogeneous. This study aimed to determine whether these heterogeneous alterations converge onto a shared functional network and to characterize its normative transcriptomic and neurochemical correlates. METHODS: Using a coordinate-based network mapping approach (functional connectivity network mapping, FCNM), we delineated a common brain network functionally connected to regional intrinsic neural activity alterations reported across 20 published neuroimaging studies. The robustness of the resulting network was assessed in an independent cross-scanner validation connectome and across different seed sizes. We further characterized this TLE-related network by correlating its spatial topography with microscale gene expression data from the Allen Human Brain Atlas (AHBA) and with normative neurotransmitter receptor and transporter distributions derived from the JuSpace toolbox. RESULTS: Twenty studies comprising 345 foci of regional intrinsic neural activity alteration in TLE were included. The FCNM analysis revealed that heterogeneous regional alterations in TLE converged onto a common functional brain network. This network exhibited the greatest spatial overlap with the default mode network (DMN), while also showing substantial overlap with the limbic network (LN). Transcriptomic analysis revealed that the network's topography was spatially correlated with gene expression profiles significantly enriched in adaptive immune response pathways, particularly antigen processing and presentation. Neurochemically, the TLE-related network exhibited a significant positive spatial correlation with the distribution of the 5-hydroxytryptamine receptor 1A (5-HT1A). CONCLUSION: Our findings reconcile previously inconsistent reports of regional intrinsic neural activity alterations in TLE by demonstrating their convergence onto a shared brain network, primarily the DMN and LN. By linking this TLE-related network to specific normative transcriptomic and neurochemical signatures, we propose a multi-scale neurobiological framework for the disorder. These findings should be interpreted as spatial associations based on normative datasets rather than direct evidence of disease-specific molecular alterations. This framework reframes TLE from a collection of disparate regional changes toward a core network dysfunction with distinct molecular correlates, thereby opening new avenues for targeted, network-based interventions.

Metadane publikacji

Journal
Front Mol Neurosci
Data publikacji
01.01.2026
PMID
42639001
DOI
10.3389/fnmol.2026.1909269
Autorzy
Ma LL, Yang LL, Zhou BZ, Gao Q, Zheng BC, Yang HC, Wang GD, Yang TT
Słowa kluczowe
brain network, functional connectivity network mapping, gene expression, neurotransmitter, temporal lobe epilepsy
Źródło
PubMed