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Gombas, P.

Publications and source records attributed to Gombas, P..

2 recordsLinked to original sources

Absolute number of three populations of interneurons and GABAergic synapses in the human hippocampus

The human hippocampus, essential for learning and memory, is implicated in numerous neurological and psychiatric disorders, each linked to specific neuronal subpopulations. Advancing our understanding of hippocampal function requires computational models grounded in precise quantitative neuronal data. While extensive data exist on the neuronal composition and synaptic architecture of the rodent hippocampus, analogous quantitative data for the human hippocampus remain very limited. Given the critical role of local GABAergic interneurons in modulating hippocampal functions, we employed unbiased stereological techniques to estimate the density and total number of three major GABAergic cell types in the human hippocampus: parvalbumin (PV)-expressing, somatostatin (SOM)-positive, and calretinin (CR)-positive interneurons. Our findings reveal an estimated 49,400 PV-positive, 141,500 SOM-positive, and 250,600 CR-positive interneurons per hippocampal hemisphere. Notably, the higher proportion of CR-positive, primarily interneuron-selective, cells in humans, compared to rodents, may enhance local interneuron regulation. Additionally, using 3-dimensional electron microscopy, we estimated approximately 25 billion GABAergic synapses per hippocampal hemisphere, with PV-positive boutons comprising around 3.5 billion synapses, or 14% of the total GABAergic synapses. These findings contribute crucial quantitative insights for modeling human hippocampal circuits and understanding its complex regulatory dynamics.

neuroscience↗

Pathway-specific progression of Tau pathology in the human thalamus

The Papez circuit comprises several interconnected brain areas important for spatial navigation and orientation. An early symptom of dementia is disorientation, suggesting that brain regions responsible for providing a sense of direction are adversely affected. We examined post-mortem human tissue from cases with no cognitive impairment, mild cognitive impairment, and Alzheimers disease. A key part of the Papez circuit, the anterodorsal thalamic nucleus (ADn), contained a high density of misfolded pathological Tau (pTau) at all disease stages, including in control cases. Moreover, pTau preferentially accumulated in calretinin-expressing neurons. At the subcellular level, we detected pTau filaments in ADn cell bodies, dendrites, and in specialized presynaptic terminals. Large vesicular-glutamate-transporter-2-containing terminals from the lateral mammillary nucleus, rather than corticothalamic terminals, preferentially contained pTau, suggesting that Tau crosses specific synapses within the Papez circuit. As the ADn contains a high density of head direction cells, pTau may degrade the processing of orientation signals, explaining why people become disorientated years-to-decades before memory deficits emerge.

neuroscience↗