PubMed HealthSearch

PubMed · 9618544

Synchronization between prefrontal and posterior association cortex during human working memory.

Abstract

We measured coherence between the electroencephalogram at different scalp sites while human subjects performed delayed response tasks. The tasks required the retention of either verbalizable strings of characters or abstract line drawings. In both types of tasks, a significant enhancement in coherence in the theta range (4-7 Hz) was found between prefrontal and posterior electrodes during 4-s retention intervals. During 6-s perception intervals, far fewer increases in theta coherence were found. Also in other frequency bands, coherence increased; however, the patterns of enhancement made a relevance for working memory processes seem unlikely. Our results suggest that working memory involves synchronization between prefrontal and posterior association cortex by phase-locked, low frequency (4-7 Hz) brain activity.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

J Sarnthein, H Petsche, P Rappelsberger, G L Shaw, A von Stein. 1998-06-09. Synchronization between prefrontal and posterior association cortex during human working memory.. https://doi.org/10.1073/pnas.95.12.7092

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Histone H3K9 methyltransferases regulate cortical growth by coordinating heterochromatin formation and neural progenitor dynamics.

DNA packaging into heterochromatin is a fundamental mechanism of transcriptional silencing, yet its role in regulating neural progenitor behavior during brain development remains poorly understood. Trimethylation of histone H3 lysine 9 (H3K9me3), catalyzed by the methyltransferases SETDB1, SUV39H1, and SUV39H2, is a defining feature of heterochromatin, but functional redundancy among these enzymes has obscured their developmental roles. Here, we generated a cortex-specific triple knockout mouse model lacking Setdb1, Suv39h1, and Suv39h2 to directly interrogate H3K9me3 function during corticogenesis. Combined loss of H3K9 methyltransferases caused genome-wide depletion of H3K9me3, disruption of neural progenitor cell-cycle progression, and impaired cortical neurogenesis, resulting in microcephaly. H3K9 methyltransferases preserve neural progenitor identity and function by silencing clustered protocadherins, meiosis-associated genes, and a cell-cycle restraint program through H3K9me3 deposition. Loss of H3K9me3 promoted local chromatin opening and increased transcription factor occupancy, enabling transposable elements to acquire cryptic enhancer activity and modulate proximal gene expression. Together, these findings establish H3K9me3 heterochromatin as an active regulator of neural progenitor dynamics and lineage fidelity, revealing a central epigenetic mechanism that restricts aberrant transcriptional programs to ensure cortical growth.

Cerebral Cortex

Immunoglobulin G and complement immunoreactivity in the cerebral cortex of patients with Rasmussen's encephalitis.

OBJECTIVE: To provide evidence that complement (C')-dependent processes may be involved in Rasmussen's encephalitis (RE). BACKGROUND: RE is a rare, progressive, childhood epilepsy syndrome associated with inflammation and neuronal cell loss in a single cerebral hemisphere. Recent work suggests an autoimmune immunoglobulin (Ig) G-mediated process is important in disease pathogenesis. METHODS: Brain samples from RE and complex partial epilepsy control patients were analyzed immunohistochemically. Sections were stained for IgG and the C' factors C4, C8, and the membrane attack complex (MAC). RESULTS: Brain samples from three of five patients with active, progressive RE but neither of two chronic RE nor five control epilepsy patients demonstrated immunoreactivity for IgG, C4, C8, and MAC on discrete patches of cerebrocortical neurons. Intensely activated glial fibrillary acid protein-positive astrocytes were found in areas overlapping these patches. CONCLUSION: Focally distributed IgG- and C'-positive neurons were found to colocalize with activated astrocytes, suggesting focal IgG-dependent classical C' cascade pathway activation with attendant tissue damage in this subset of RE patients. Intraparenchymal C' activation triggered by pathogenic antibodies may contribute to the development of focal inflammation, neuronal cell loss, and pharmacoresistant seizures in some patients with this disease. This process may be an important component in the initial, active phase of RE.

Cerebral Cortex

Cerebral cortical dysplasia and digital constriction rings in Adams-Oliver syndrome.

Adams-Oliver syndrome (AOS) is characterised by aplasia cutis congenita of the scalp and variable degrees of terminal transverse limb defects. Short fingers and hypoplastic nails also occur in this predominantly autosomal dominant syndrome which displays marked variability of expression and lack of penetrance in some cases. We describe a boy with AOS whose sister is also mildly affected. Their mother has hypoplastic fifth toenails which may represent very mild expression of the syndrome. Brain (computed tomography) imaging to investigate mild left hemiparesis in the boy demonstrated severe cortical dysplasia of central, occipital and anterior regions of the right cerebral hemisphere. A variety of brain and cranial malformations has been reported in AOS but dysplasia of the cerebral cortex has not been noted previously. In addition, the boy and his sister have apparent constriction rings present on the toes which are uncommon in AOS.

Cerebral Cortex