bioRxiv Science⌕ Search

Biology subjects

Bago, A. G.

Publications and source records attributed to Bago, A. G..

2 recordsLinked to original sources

Preserved functions with profound morphological reorganization in human organotypic cultures

Human organotypic slice cultures provide experimental access to adult human neuronal circuits ex vivo, yet it remains unclear whether these networks preserve function or undergo fundamental reorganization following the profound perturbation of slice preparation. Here, we combined extracellular population and single-unit electrophysiology, longitudinal calcium imaging, and quantitative histology to track the changes of human cortical slice cultures over several weeks in vitro. Early phases were marked by pronounced variability and instability, with reduced firing rates, increased burst propensity in principal cells, elevated discharge irregularity, and heterogeneous recruitment during population activity. These functional changes coincided with substantial structural remodeling, including considerable neuronal loss, disruption of laminar architecture, reactive gliosis, and selective vulnerability of inhibitory interneurons. Strikingly, despite this progressive structural degradation, neuronal activity did not diverge but instead converged. By the fourth week in culture, electrophysiological properties, cell-type-specific firing patterns, and population-event recruitment became stable and highly consistent across patients. Calcium imaging revealed persistent, spatially confined regions of synchronous activity, indicating the preservation of structured network dynamics. These events remained within physiological regimes and lacked features of epileptiform discharges. Thus, human neuronal circuits exhibit a robust capacity for self-organization, transitioning from heterogeneous, injury-driven dynamics to stable and homogeneous functional states. This dissociation between structural deterioration and functional convergence establishes human organotypic slice cultures as a reproducible and translationally relevant platform for studying human brain network dynamics ex vivo.

neuroscience↗

Cell-specific expression of key mitochondrial enzymes precludes OXPHOS in astrocytes of the adult human neocortex and hippocampal formation

The astrocyte-to-neuron lactate shuttle hypothesis entails that glycolytically derived pyruvate in astrocytes is converted to lactate instead of being catabolized in mitochondria. The mechanism of this metabolic rewiring is unclear. Here we show that astrocytes of the adult human neocortex and hippocampal formation do not express mitochondrial proteins critical for performing oxidative phosphorylation (OXPHOS) to a detectable degree, including cytochrome c and complex IV. Without OXPHOS, human brain astrocytes are bound to produce lactate to avoid interruption of glycolysis.

neuroscience↗